CyberChef's 504 data-transformation operations as MCP tools: encryption, encoding, forensics.
CyberChef MCP Server (Model Context Protocol)
This MCP server exposes CyberChef functionality as Model Context Protocol tools. It provides access to CyberChef’s data-transformation operations—covering encryption, encoding, compression, and forensic analysis—so AI assistants can execute those operations directly.
🛠️ Key Features
CyberChef MCP server interface
504 data-manipulation operations as MCP tools
Supports encryption, encoding, compression, and forensic analysis
🚀 Use Cases
Data transformation for security workflows
Encryption/encoding tasks in assistive tooling
Forensics and dfir-related analysis using CyberChef operations
CTF and offensive-security style processing
⚡ Developer Benefits
Standard MCP server support (model-context-protocol, mcp-server)
Tool-based access to a large CyberChef operation library
Project uses JavaScript/Node.js (docker mentioned in topics)
⚠️ Limitations
Scope is limited to CyberChef’s 504 operations exposed via MCP tools
Description and metadata provided do not include configuration, authentication, or deployment details beyond the MCP interface
Latest release: v3.8.0 (release notes and tutorial referenced).
This project provides a Model Context Protocol (MCP) server interface for CyberChef, the "Cyber Swiss Army Knife" created by GCHQ.
By running this server, you enable AI assistants (like Claude, Cursor AI, and others) to natively utilize CyberChef's extensive library of 504 data manipulation operations—including encryption, encoding, compression, and forensic analysis—as executable tools.
CyberChef is a simple, intuitive web app for carrying out all manner of "cyber" operations within a web browser. It was originally conceived and built by GCHQ.
This fork wraps the core CyberChef Node.js API into an MCP server, bridging the gap between natural language AI intent and deterministic data processing.
Fork Relationship
This project maintains a selective sync relationship with the upstream GCHQ/CyberChef repository:
Synced from upstream: src/core/** (minus three generated paths) and six upstream-owned
files in src/node/. Mirrored verbatim — never hand-edit them; fork changes live as
re-applied patches.
Web UI Components: Removed (88 files, ~19,260 lines) — not needed for an MCP server
MCP-Specific Code: this fork's own (src/node/mcp-server.mjs, src/node/lib/**, tests/mcp/,
workflows)
Sync is one-way: pull only. As of v2.0.0 the combined work is GPL-3.0-or-later, so MCP-layer
changes cannot be contributed back to an Apache-2.0 upstream.
Exact scope, the patch model, and what to do when a sync conflicts:
Upstream Sync Guide.
The server exposes CyberChef operations as MCP tools:
Runs on ARM, and 30% smaller (v2.8.0): images are published for linux/arm64 as well as linux/amd64 — Apple Silicon, Graviton, Raspberry Pi 4/5 — and the image is down from 643 MB to 453 MB. Also CYBERCHEF_OFFLINE=true for air-gapped hosts: 502 of the 504 operations never touched a network anyway, so this is a fail-closed switch for the two that do, checked against the recipe rather than the tool name. See the edge deployment guide for architectures, sizing and air-gapped install, and the release notes for how the size reduction was done and verified.
Observable (v2.7.0): a dependency-free Prometheus endpoint at /metrics (20 metric families, off by default — unlike the health probes it reports which tools are used, how often and how large the inputs are, which is a reconnaissance surface), OpenTelemetry spans following the MCP semantic conventions, and trace_id/span_id on every log line. It adds one package: the OTel API, not the SDK — measured at 1 package / 2.6 MB / +9 ms against the SDK's 71 packages / 50 MB / +100 ms, which would have handed back more than half of v2.6.0's startup work on every stdio launch. You supply the SDK, so every OTLP backend works rather than a chosen few. Ships a Grafana dashboard, alert rules and a runnable Prometheus stack — all executed against a live server rather than reviewed. Tool arguments are never recorded: the conventions mark them Opt-In, and for this server the arguments are the sensitive material.
OAuth 2.1 authentication on HTTP (v2.5.0): the server acts as an OAuth 2.1 Resource Server — RFC 9728 Protected Resource Metadata, JWKS-based bearer validation, and RFC 8707 audience binding, which is the check that stops a token minted for another service being replayed here. Scope-based RBAC with three scopes (cyberchef:read, cyberchef:write, cyberchef:network), where the scope a tool needs is derived from its annotations rather than a table that goes stale. Audit logging for who called what. Off unless CYBERCHEF_AUTH_ISSUER is set, and deliberately not applied to stdio — the MCP specification says stdio SHOULD NOT use OAuth, because a bearer token protects nothing when the client already owns the process.
Multi-tenancy (v2.5.0): the operation cache, recipe store, concurrency pool and audit trail are isolated per tenant, with the tenant read from a claim on an already-verified token (CYBERCHEF_TENANT_CLAIM) — never from a header the caller controls. Without it, any caller on a shared HTTP deployment could list, modify and delete any other caller's saved recipes, and clear() destroyed every tenant's at once. Off unless configured, and configuring it without CYBERCHEF_AUTH_ISSUER is a startup error rather than a silent downgrade.
Starts in ~185 ms (v2.6.0): it used to take ~1.3 seconds, of which ~1.15 s was importing all 504 operation implementations before answering anything — paid on every launch, on stdio, which is how every editor starts the server. The 504-operation barrel is now loaded only by the three tools that need it (cyberchef_search, batch search, and saved-recipe execution). tools/list is built from metadata, and an ordinary operation call loads just the one operation it runs — verified: cyberchef_bake completes without the barrel being loaded at all. A background warm-up was tried, measured, and removed: module loading blocks the event loop, so it just moved the cost in front of the first request.
Deployable as a service (v2.6.0): a Helm chart and Compose file with liveness/readiness/startup probes and a drain that loses no requests during a rolling update. Liveness deliberately stays healthy while draining — a liveness failure there gets the pod killed mid-drain. The chart refuses to render configurations the server would reject at startup, so they fail at helm template rather than as a crashloop.
Bounded calls to the authorization server (v2.6.0): JWKS discovery had no timeout (Node's fetch has none by default) and cached failures not at all, so an issuer outage turned every request into two outbound ones that could hang until the OS gave up. Now a 5 s deadline and a circuit breaker: 20 verifications against a down issuer went from 40 outbound attempts to 10.
Nineteen analysis tools that are not operations (v2.4.0, expanded through v3.11.0): the original four are cyberchef_xor_key_length (repeating-key XOR length by index of coincidence), cyberchef_cyclic_pattern (De Bruijn patterns and overflow offsets, byte-compatible with pwntools' cyclic), cyberchef_hash_identify (hash format with the hashcat mode and John format name) and cyberchef_rsa_attack (Fermat, shared factors, Wiener and unpadded small-e). Twelve more arrived in v3.3.0 (classical ciphers, crib dragging, entropy scanning, hash cracking and statistics, JWT weaknesses, plaintext scoring, multi-key RSA, substitution and Vigenère breaking, timestamp identification, corpus diffing), then cyberchef_ecdsa_recover in v3.4.0 (private-key recovery from a reused ECDSA nonce) and cyberchef_cert_chain in v3.8.0 (orders an X.509 bundle, verifies every link cryptographically, and reports the chain's validity window as the intersection of its members', both ends). cyberchef_pqc_identify arrived in v3.11.0: it names the NIST post-quantum parameter set behind a key, signature or ciphertext — ML-KEM (FIPS 203), ML-DSA (FIPS 204) or SLH-DSA (FIPS 205) — from the OID when there is DER to read, and from byte length when there is not, in which case it reports every candidate and says so rather than picking one. See Analysis Tools. An operation is a pure run(input, args) over one input and cannot express an analysis; cyberchef_bake cannot either, because a recipe is a pipeline, not a loop. Since v4.1.0 they are reached through cyberchef_analyse({tool, arguments}) on the default index surface, and remain listed outright on curated and all — nineteen of them had been 68% of the index, listed only because cyberchef_describe_operation refused them and pointed at tools/list, which made the listing their sole schema path. There is deliberately no plugin loader — node:vm is not a security boundary, and that was measured rather than assumed (ADR 0002).
Protocol revision 2026-07-28 (v2.3.0): served on both stdio and HTTP alongside the 2025 era, from one set of handlers. Existing clients are unaffected — a v1-SDK client still negotiates 2025-11-25 against the same registrations. On HTTP the two eras are routed per request by the SDK's own classifier, so 2025 traffic keeps the sessionful wiring while modern traffic is served per request.
Three transports (v2.3.0): stdio, Streamable HTTP, and a socket binding over a Unix domain socket or loopback TCP (CYBERCHEF_TRANSPORT=socket), one pinned server instance per connection. It carries no authentication, so a non-loopback bind is refused unless explicitly allowed and the Unix socket is created 0600. There is deliberately no WebSocket transport — MCP does not define one.
Every image operation works (v2.3.0): 17 of them returned Node's shared buffer pool instead of the image — unreadable output, and the surplus was whatever the process had recently allocated. Add Text To Image had never worked in this fork at all, since v1.7.1. Both are fixed as fork patches.
Images and audio come back as images and audio (v2.2.0): Generate QR Code, Render Image and the image set return an MCP image content block; Play Media returns an audio block. Before v2.2.0 the html-to-text conversion deleted the payload and these operations returned an empty string — they had never worked over MCP. Other binary stays byte-lossless latin1 text, or base64 with CYBERCHEF_BINARY_OUTPUT=base64.
Tool annotations on every tool (v2.2.0): readOnlyHint, destructiveHint, idempotentHint, openWorldHint and a readable title, so a client can skip the approval prompt for a pure operation. The exceptions were measured, not guessed — only HTTP request and DNS over HTTPS reach the network, and non-idempotence was determined by running each candidate twice and comparing.
Prompts and resources (v2.2.0): five workflow prompts (analyse-unknown-data, extract-iocs, deobfuscate-script, identify-hash, decode-chain) for when you do not yet know which of 504 operations you need, and saved recipes exposed as readable resources at recipe://<id>.
cyberchef_bake: The "Omni-tool". Executes a full CyberChef recipe (a chain of operations) on an input. Ideal for complex, multi-step transformations (e.g., "Decode Base64, then Gunzip, then prettify JSON").
All 504 operations, without paying for 504 schemas (v2.1.0): tools/list is an index by default — 23 tools and 15,620 bytes, rather than 545 tools and 426,706 bytes. Every operation stays reachable: cyberchef_categories -> cyberchef_list_operations -> cyberchef_describe_operation walks down to any of them, cyberchef_search finds one by keyword, and cyberchef_bake runs any of them by name. The 19 analysis tools are reachable the same way, through cyberchef_describe_operation and cyberchef_analyse — they were listed on every surface until v4.1.0, where nineteen of them were 68% of the index, because describe_operation used to refuse them and point at tools/list, making the listing their only schema path. CYBERCHEF_TOOL_SURFACE=curated (120 tools, 109,548 bytes) or =all (all 545, 426,706 bytes) if you would rather pre-load; both still list every analysis tool outright. See the User Guide.
cyberchef_to_base64 / cyberchef_from_base64
cyberchef_aes_decrypt
cyberchef_sha2
cyberchef_yara_rules
...and hundreds more.
cyberchef_search: A utility tool to help the AI discover available operations and their descriptions.
Recipe Management (v1.6.0): 10 tools for saving, organizing, and reusing multi-operation workflows
cyberchef_cache_stats / cyberchef_cache_clear - Cache inspection and management
cyberchef_quota_info - Resource quota and usage tracking
Migration tooling — REMOVED in v4.0.0.cyberchef_migration_preview,
cyberchef_deprecation_stats and the cyberchef-migrate binary existed to help callers reach
v2.0.0, nine minors earlier. They were advertised on every surface and cost 995 bytes of
every tools/list, while the only warning still emitted was DEP007 — a withdrawn code
whose own text read "No action required". Your v1-format recipes need no migration: positional
arguments, bare string operations and named-object arguments all bake identically today.
The cyberchef_ prefix is permanent. DEP001, DEP007 and DEP008 announced its removal in v1.8.0 and were withdrawn in v2.0.0: removing it saves 2.6% of the tools/list payload while colliding 19 tool names in MCP's flat namespace and breaking every existing integration. Keep using cyberchef_to_base64, cyberchef_bake and cyberchef_search. See v2.0.0 Breaking Changes.
Worker Thread Pool (v1.9.0): CPU-intensive operations offloaded to worker threads
cyberchef_worker_stats - Monitor worker pool utilization, active/completed tasks, and pool configuration
Enable with CYBERCHEF_ENABLE_WORKERS=true environment variable
Configurable pool size, idle timeout, and minimum input size for worker routing
Technical Highlights
Dockerized: Runs as a self-contained Docker container on a Chainguard Wolfi Node.js base (v26.8.1 at time of writing), pinned by digest and bumped weekly by Dependabot. Measured against the published v3.1.0 image: 453 MB on disk, 141 MB as the gzipped release tarball, running as UID 65532 (nonroot). The base is rebuilt daily and carries no package manager (apk, wget and curl are all absent) -- but it does include a BusyBox shell and npm, so treat a container compromise as having a shell available. This line previously claimed "no shell" and "726 MB on disk"; both were wrong, and the correction is recorded in the v3.1.0 baseline.
Dual-Registry Publishing: Images published to both Docker Hub and GitHub Container Registry (GHCR) for maximum accessibility and Docker Scout health score optimization.
Supply Chain Attestations: SBOM and provenance attestations attached to Docker Hub images for enhanced security transparency and compliance (SLSA Build Level 3).
Dual Transport (v1.9.0; per-session HTTP since v2.0.0): Stdio (default) or Streamable HTTP via CYBERCHEF_TRANSPORT=http. Every HTTP client gets its own session and its own MCP server instance, with CORS, DNS-rebinding protection and a session cap. See the HTTP Transport Guide.
MCP Streaming with Progress (v1.9.0): Operations send notifications/progress via the MCP SDK progress token mechanism for real-time status updates during long-running tasks.
Worker Thread Pool (v1.9.0): Piscina-based worker threads offload CPU-intensive operations (AES, Blowfish, bcrypt, scrypt, PBKDF2, etc.) to prevent event loop blocking. Configurable pool size and routing thresholds.
Schema Validation: All inputs are validated against schemas derived from CyberChef's internal type system using zod.
Modern Node.js: Requires Node.js >=26 <27 since v4.0.0, and the published image runs Node 26 -- floor and runtime are now the same version rather than two majors apart.
Recipe Management (v1.6.0): Save and reuse multi-operation workflows with full CRUD operations, import/export in multiple formats (JSON/YAML/URL/CyberChef), recipe composition with nesting support, and curated library of 25+ production-ready recipes across 5 categories. See Recipe Management Guide for details.
Advanced Features (v1.7.0): Enterprise-grade capabilities with batch processing (parallel/sequential execution of up to 100 operations), privacy-first telemetry collection (disabled by default, no input/output data captured), sliding window rate limiting for resource protection, enhanced caching with inspection tools, and resource quota tracking (concurrent operations, data sizes). All features are configurable via environment variables with secure defaults. See Release Notes for details.
Enhanced Observability (v1.5.0): Structured JSON logging with Pino for production monitoring, comprehensive error handling with actionable recovery suggestions, automatic retry logic with exponential backoff, request correlation with UUID tracking, circuit breaker pattern for cascading failure prevention, and streaming infrastructure for progressive results on large operations. See Release Notes for details.
Performance Optimized (v1.4.0): LRU cache for operation results (100MB default), automatic streaming for large inputs (10MB+ threshold), configurable resource limits (100MB max input, 30s timeout), memory monitoring, and comprehensive benchmark suite. See Performance Tuning Guide for configuration options.
Upstream Sync Automation (v1.3.0; rebuilt in v2.0.0): Weekly monitoring of upstream releases, an atomic whole-tree mirror, fork changes carried as patches that fail the sync if they stop applying, comprehensive validation (1,246 MCP + 241 Node-API + 2,289 operation tests), and an emergency rollback. See the Upstream Sync Guide.
Security Hardened (v1.4.5+): Chainguard Wolfi base image with zero-CVE baseline, non-root execution (UID 65532), automated Trivy vulnerability scanning with build-fail thresholds, dual SBOM strategy (Docker Scout attestations + CycloneDX), read-only filesystem support, SLSA Build Level 3 provenance, and 7-day SLA for critical CVE patches. Fixed 11 of 12 code scanning vulnerabilities including critical cryptographic randomness weakness and 7 ReDoS vulnerabilities. See Security Policy and Security Fixes Report for details.
Production Ready: Comprehensive CI/CD with CodeQL v4, automated testing, and dual-registry container publishing (Docker Hub + GHCR) with complete supply chain attestations.
Quick Start
Prerequisites
Node.js>=26 <27 for the npm install, or Docker for the container.
Installation Options
Option 1: npm (Recommended)
bash
npx cyberchef-mcp
No clone, no build, no Docker daemon. For an MCP client, point it at the same command:
Installing it permanently works too — npm install -g cyberchef-mcp, then run cyberchef-mcp.
That is the only binary the package ships; cyberchef-migrate was removed in v4.0.0.
Option 2: Pull from Docker Hub
bash
# Docker Hub provides health scores and supply chain attestations
docker pull parobek/cyberchef-mcp:latest
docker tag parobek/cyberchef-mcp:latest cyberchef-mcp
docker run -i --rm cyberchef-mcp
Option 2b: Pull from GitHub Container Registry (Alternative)
bash
docker pull ghcr.io/doublegate/cyberchef-mcp_v4:latest
docker tag ghcr.io/doublegate/cyberchef-mcp_v4:latest cyberchef-mcp
docker run -i --rm cyberchef-mcp
After adding the configuration, restart Claude Desktop. The CyberChef tools will appear in the available tools panel.
Performance & Configuration
Version 1.4.0 introduces comprehensive performance optimizations and configurable resource limits. All features can be tuned via environment variables for your deployment needs.
Performance Features
LRU Cache for Operation Results
Automatically caches operation results to eliminate redundant computation
Configurable cache size (100MB default) and item count (1000 default)
Cache keys based on operation + input + arguments (SHA256 hash)
Automatic Streaming for Large Inputs
Inputs exceeding 10MB automatically use chunked processing
Supports encoding, compression, and hashing operations
Prevents out-of-memory crashes and runaway operations
Memory Monitoring
Periodic memory usage logging to stderr
Heap and RSS tracking for troubleshooting
Configuration Options
Every setting can be given either in a cyberchef.config.json file or as an environment variable,
with environment variables taking precedence over the file. Nothing is required: with no file,
the server behaves exactly as it always has.
A malformed file, an unknown section or an unknown setting stops the server with a message naming
the mistake, rather than starting on defaults nobody chose. All 61 settings, their sections and
their environment-variable equivalents are in the
configuration guide.
The same settings as environment variables:
bash
# Logging (v1.5.0+)
LOG_LEVEL=info # Logging level: debug, info, warn, error, fatal# Retry Logic (v1.5.0+)
CYBERCHEF_MAX_RETRIES=3 # Maximum retry attempts for transient failures
CYBERCHEF_INITIAL_BACKOFF=1000 # Initial backoff delay in milliseconds
CYBERCHEF_MAX_BACKOFF=10000 # Maximum backoff delay in milliseconds
CYBERCHEF_BACKOFF_MULTIPLIER=2 # Backoff multiplier for exponential backoff# Streaming (v1.5.0+)
CYBERCHEF_STREAM_CHUNK_SIZE=1048576 # Chunk size for streaming (1MB)
CYBERCHEF_STREAM_PROGRESS_INTERVAL=10485760 # Progress reporting interval (10MB)# Recipe Management (v1.6.0+)
CYBERCHEF_RECIPE_STORAGE=./recipes.json # Storage file path
CYBERCHEF_RECIPE_MAX_COUNT=10000 # Maximum number of recipes
CYBERCHEF_RECIPE_MAX_OPERATIONS=100 # Max operations per recipe
CYBERCHEF_RECIPE_MAX_DEPTH=5 # Max nesting depth# Batch Processing (v1.7.0+)
CYBERCHEF_BATCH_MAX_SIZE=100 # Maximum operations per batch
CYBERCHEF_BATCH_ENABLED=true# Enable/disable batch processing# Telemetry & Analytics (v1.7.0+)
CYBERCHEF_TELEMETRY_ENABLED=false# Privacy-first: disabled by default# Rate Limiting (v1.7.0+)
CYBERCHEF_RATE_LIMIT_ENABLED=false# Disabled by default
CYBERCHEF_RATE_LIMIT_REQUESTS=100 # Max requests per window
CYBERCHEF_RATE_LIMIT_WINDOW=60000 # Time window in milliseconds# Cache Management (v1.7.0+)
CYBERCHEF_CACHE_ENABLED=true# Enable/disable caching# Resource Quotas (v1.7.0+)
CYBERCHEF_MAX_CONCURRENT_OPS=10 # Maximum concurrent operations# (Removed in v4.0.0) V2_COMPATIBILITY_MODE and CYBERCHEF_SUPPRESS_DEPRECATIONS went with the# deprecation system they configured. Do not set them: the `compatibility` section is now an# unknown section, and `cyberchef.config.json` fails CLOSED on one -- the server refuses to start# with "unknown section \"compatibility\"". The env vars are simply ignored.# Transport (v1.9.0+; per-session HTTP since v2.0.0)
CYBERCHEF_TRANSPORT=stdio # Transport type: stdio or http
CYBERCHEF_HTTP_PORT=3000 # HTTP transport port
CYBERCHEF_HTTP_HOST=127.0.0.1 # HTTP bind address (use 0.0.0.0 in a container)
CYBERCHEF_ALLOWED_HOSTS= # Comma-separated Host allowlist. DNS-rebinding protection# is ON by default (loopback names). Set this when binding# a non-loopback address; `*` disables the check.
CYBERCHEF_ALLOWED_ORIGINS= # Comma-separated Origin allowlist; enables CORS. Required# by browser MCP clients (e.g. MCP Inspector's web UI).
CYBERCHEF_SESSION_TIMEOUT=1800000 # Idle HTTP session reap threshold (30 min)
CYBERCHEF_HTTP_MAX_BODY=4194304 # Maximum accepted HTTP request body (4 MiB)
CYBERCHEF_HTTP_PATH=/mcp # MCP endpoint path; any other path returns 404
CYBERCHEF_MAX_SESSIONS=100 # Cap on concurrent HTTP sessions; initialize 503s beyond it# Worker Thread Pool (v1.9.0+)
CYBERCHEF_WORKER_MIN_THREADS=1 # Minimum worker threads
CYBERCHEF_WORKER_MAX_THREADS=4 # Maximum worker threads
CYBERCHEF_WORKER_IDLE_TIMEOUT=30000 # Worker idle timeout in milliseconds
CYBERCHEF_WORKER_MIN_INPUT_SIZE=1024 # Minimum input size for worker routing (bytes)# Performance (v1.4.0+)
CYBERCHEF_MAX_INPUT_SIZE=104857600 # Maximum input size (100MB)
CYBERCHEF_OPERATION_TIMEOUT=30000 # Operation timeout in milliseconds (30s)
CYBERCHEF_STREAMING_THRESHOLD=10485760 # Streaming threshold (10MB)
CYBERCHEF_ENABLE_STREAMING=true# Enable streaming for large operations
CYBERCHEF_ENABLE_WORKERS=false# Enable worker thread pool (disabled by default)
CYBERCHEF_CACHE_MAX_SIZE=104857600 # Cache maximum size (100MB)
CYBERCHEF_CACHE_MAX_ITEMS=1000 # Cache maximum items
CYBERCHEF_ALLOWED_HOSTS is new in v2.0.0. DNS-rebinding protection is on by default — with
nothing set the server answers only to localhost, 127.0.0.1 and [::1] — so binding a
non-loopback address means naming the hosts you will reach it by, as the example above does.
Loopback is not an exemption: DNS rebinding exists to reach loopback, by making the victim's
browser resolve an attacker-controlled name to 127.0.0.1. The browser then treats the request as
same-origin, so no preflight is sent and CYBERCHEF_ALLOWED_ORIGINS never comes into it. See
the HTTP transport guide for the full
walkthrough.
Multiple simultaneous clients work from v2.0.0. Before it, the HTTP transport was a single
process-wide instance, so the first client to connect succeeded and every one after it was refused
with Invalid Request: Server already initialized (#36).
Each client now gets its own session and its own MCP server instance. See the
HTTP Transport Guide.
CRITICAL: Fixed insecure cryptographic randomness in GOST library - replaced Math.random() with crypto.randomBytes()
HIGH: Addressed 7 ReDoS (Regular Expression Denial of Service) findings across 6 operations
Withdrawn — this protection is no longer present. The fix worked by importing a
SafeRegex.mjs helper into the affected operations. Those operations live under
src/core/operations/, which upstream-sync.yml copies verbatim from upstream, so a
later sync removed every import. The module has been removed rather than left as
dead code claiming a protection it no longer provided.
See the incident record
for the verification and the general rule it establishes: a hand-edit inside
src/core/** is a fix with an expiry date set by the next sync.
All 1,933 Tests Passing: Security fixes validated with comprehensive test suite
Non-Root Execution: Container runs as UID 65532 (nonroot)
Read-Only Filesystem: Supports --read-only flag for immutable deployments
Minimal Attack Surface: no package manager (apk, wget and curl are absent) and production dependencies only. A BusyBox shell and npm ARE present -- this line said "no shell" until v3.2.0, when measuring the published image showed otherwise. Size a container compromise accordingly.
Health Checks: Built-in container health monitoring
# Recommended: Run with maximum security options
docker run -i --rm \
--read-only \
--tmpfs /tmp:rw,noexec,nosuid,size=100m \
--cap-drop=ALL \
--security-opt=no-new-privileges \
cyberchef-mcp
# Note: the image already runs as non-root (UID 65532)# --read-only requires tmpfs mount for /tmp directory
For detailed information, see:
Security Policy - Vulnerability reporting and security policies
The original roadmap scoped 19 releases across 6 phases through August 2027. It was overtaken:
all six phases are complete and the project is at v4.2.0. The table below is kept because it
records what each phase was for; docs/planning/ROADMAP.md is the
live source and has a row per shipped release.
Phase
Releases
Timeline
Focus
Status
Phase 1: Foundation
v1.2.0 - v1.4.6
Q4 2025 - Q1 2026
Security hardening, upstream sync, performance
Completed
Phase 2: Enhancement
v1.5.0 - v1.7.3
Q2 2026
Streaming, recipe management, batch processing
Completed
Phase 3: Maturity
v1.8.0 - v2.0.0
Q3 2026
API stabilization, upstream catch-up, relicensing, v2.0.0
v2.0.0 Released
Phase 4: Expansion
v2.2.0 - v2.4.0
Q4 2026
Multi-modal (v2.2.0 shipped), protocol currency and transports (v2.3.0 shipped), the tool registry and its first four tools (v2.4.0 shipped)
Complete
Phase 5: Enterprise
v2.5.0 - v2.7.0
Q1 2027
OAuth 2.1, RBAC, audit logging and multi-tenancy (v2.5.0 shipped), horizontal scaling and deployment (v2.6.0 shipped), metrics, tracing and dashboards (v2.7.0 shipped)
Complete
Phase 6: Evolution
v2.8.0 - v3.0.0
Q2-Q3 2027
Edge deployment, AI-native features, v3.0.0
Completed — and early: v3.0.0 shipped 2026-09 rather than Q3 2027
Beyond the plan
v3.1.0 - v4.2.0
2026-09
Conformance against the official suite, magic re-ranking, the arm64 benchmark, PQC identification, retiring the v2 migration surface (v4.0.0), the tool-surface work in v4.1.0, and the dispatch consolidation in v4.2.0
Shipped, none of it in the original six phases
External project integration — what it actually produced. The planning tree
(External Project Integration, 30 documents) scoped 80-120 new tools
from 8 security projects. Measuring each against the 504 operations already present cut that hard:
four tools shipped in v2.4.0, drawn on xortool, pwntools, RsaCtfTool, hashcat and John — and
nineteen now exist, twelve added in v3.3.0 and one each in v3.4.0, v3.8.0 and v3.11.0. Four of
the eight projects contributed nothing, because the capability was already here — Magic covers
what Ciphey, Ares and katana's core do, and cryptii's encodings have 26 equivalents among the
operations. The cyberchef-recipes preset corpus remains unbuilt. See
THIRD-PARTY-NOTICES.md for what was taken from where.
See the Full Roadmap for what shipped, and v4 planning for what is being watched for. A major version here exists because the protocol forced one, not because the number was next.
Documentation
New here? Start with the Tutorial — a guided first hour, from
install to decoding a real sample. Then examples/ for eight runnable scripts that
CI executes on every change, so they cannot drift from the code.
Detailed documentation is organized in the docs/ directory:
User Guides
User Guide: Detailed installation and client configuration
Product Roadmap: v1.1.0 → v3.9.0 shipped, with what each release actually found rather than what it planned
v4 planning: one measured plan and nine thin charters — and the measurement that says v4.0.0 is not scheduled, because the MCP draft specification has accumulated no changes since 2026-07-28
Tasks: 500+ implementation tasks organized by release
v2.0.0 Breaking Changes: Comprehensive migration guide for v2.0.0 with deprecation codes, examples, and FAQ
Release Notes v4.2.0: One place to add a meta-tool for the eight of ten that are uniform — 24 dispatch branches down to 16 — and a release whose two central claims were both wrong: the gate it set out to build had existed since v3.7.0, and the two "identical" recipe branches that were not (recipe_execute guards input size, recipe_export was double-encoded by the table) kept theirs. Behaviour preservation proven byte-for-byte through a real client rather than asserted
Release Notes v4.1.0: Registry tools get a navigation path and leave the default surface — the index falls from 41 tools / 44,968 bytes to 23 / 15,620 with nothing made unreachable, and the charter's headline claim turns out to be arithmetically impossible
Release Notes v4.0.0: Retiring the v2 migration surface — the deprecation system, both migration tools and the cyberchef-migrate bin, advertised on every surface for a migration nine minors old
Release Notes v3.11.0: Post-quantum identification (cyberchef_pqc_identify, all eighteen NIST parameter sets), and the thin coverage margin the previous release warned about being hit one release later
Release Notes v3.10.0: runServer() ran on every test import, arming process.exit(1) in 23 files — and fixing it dropped coverage below the gate, because the bug had been executing itself
Release Notes v3.9.0: The release with no charter, scoped from measurement instead: magic candidate re-ranking, one action version per workflow, and the surface figures measured through a real client
Release Notes v3.8.0: Two carried-forward blockers that were never blocked — arm64 benchmarking on hardware CI was already using, and cyberchef_cert_chain
Release Notes v3.7.0: A consistency gate that checked four of eleven files; its operation-count half now discovers its own targets
Release Notes v3.6.0: The benchmark gate measured into existence — a noise floor and a detection curve from a deliberate tunable slowdown, rather than a plausible threshold
Release Notes v3.5.0: Same-host benchmark comparison, and the MCP registry listing that had returned count: 0 since the ownership proofs landed
Release Notes v3.4.0: Three operations that had never worked, and cyberchef_ecdsa_recover
Release Notes v3.2.0: Every gate checked against its own claim — the benchmark workflow that said it could not fail, and two documents describing a shell-free base image that has a shell
Release Notes v3.1.0: Cache hints at the 2026-era encode seam, and the conformance suite adopted as the oracle
Release Notes v3.0.0: MCP 2026-07-28 conformance and the breaking cleanups it forced — scope filtering wired up, error codes aligned, and an npm publish guard that would have silently skipped this very release
Release Notes v2.10.0: The unified configuration file, announced for v2.0.0 and first actually read here — 61 settings, env over file over default, failing closed on an unknown key
Release Notes v2.9.0: Presented output resolved before the cache, so JSON Beautify stops returning unparseable JSON
Release Notes v2.8.1: CI testing both ends of the supported Node range, rather than one end while the image shipped the other
Release Notes v2.7.0: The image from 643 MB to 453 MB via npm prune --omit=dev, and OpenTelemetry spans on the API only
Release Notes v2.6.0: Startup cut from ~1300 ms to ~185 ms by deferring an import of all 504 operations; health probes and a drain that loses no requests on a rolling update; a Helm chart and Compose file; a 5 s deadline and circuit breaker on calls to the authorization server. Re-scoped: the plan's Redis session store solved a problem MCP 2026-07-28 deleted — the protocol has no sessions. 1,246 MCP tests.
Release Notes v2.5.0: Multi-tenancy completes the Enterprise Features milestone — the cache, recipe store, concurrency pool and audit trail isolated per tenant, with identity taken only from an already-verified token. Plus a rate limiter that had never limited anything since v1.7.0: it was keyed on a per-request UUID, so 1000 requests against a limit of 5 produced 0 denials and 1000 leaked map entries. 1,218 MCP tests.
Release Notes v2.4.0: The tool registry and its first four tools — XOR key length by index of coincidence, De Bruijn patterns compatible with pwntools, hash identification with hashcat modes, and four RSA attacks. No plugin loader, with the node:vm measurement that rules one out. Three documents corrected that described work nobody had done.
Release Notes v2.3.0: Protocol revision 2026-07-28 on stdio and HTTP, a socket transport, npm distribution unblocked, 17 image operations returning a pooled backing ArrayBuffer — unrelated bytes — instead of the image, Add Text To Image working for the first time, the coverage gate raised from 75/70/90/75 to 95/88/96/96, 1,023 MCP tests
Release Notes v2.2.0: Images and audio as content blocks (Generate QR Code returned "" and never worked), tool annotations on all 527 tools, prompts and resources, LM Hash off OpenSSL, unknown arguments rejected instead of silently defaulted, 955 MCP tests
Release Notes v2.1.0: Tool-list hierarchy (~97% smaller tools/list), Zod 4 schema fix, all 10 flow-control operations working, AES and 62 other toggleString operations fixed, logs to stderr, 60s shutdown hang removed, tutorial + 8 runnable examples
If you want to modify the server code without Docker:
Use the pinned Node version..nvmrc pins 26 (matching engines: >=26 <27 and every
CI workflow), so nvm use / fnm use selects it. Worth doing rather than assuming: through
v4.0.0 this file said 24 while the floor was already 26, so version managers quietly
selected a Node below the floor for an entire release.
bash
nvm use # or: fnm use
node --version # expect v26.x
Install Dependencies:
bash
npm install
Generate Config: (Required to build the internal operation lists)
bash
npx grunt configTests
Run Server:
bash
npm run mcp
CI/CD
This project uses GitHub Actions to ensure stability and security:
Core Development Workflows:
MCP Server CI (core-ci.yml): Tests the underlying CyberChef logic and configuration generation on Node.js 26
Docker Build (mcp-docker-build.yml): Builds, verifies, and security scans the cyberchef-mcp Docker image
Pull Request Checks (pull_requests.yml): Automated testing and validation for pull requests
Release (mcp-release.yml): Publishes Docker image to GHCR with SBOM attachment on version tags (v*), automatically creates GitHub releases
Upstream Sync Automation (v1.3.0+):
Upstream Monitor (upstream-monitor.yml): Monitors GCHQ/CyberChef for new releases weekly (Sundays at noon UTC), creates GitHub issues for review
Upstream Sync (upstream-sync.yml): Selective file synchronization workflow - copies only src/core/operations/*.mjs files, prevents restoration of deleted web UI components, creates PR for review
Rollback (rollback.yml): Emergency rollback mechanism with state comparison and ref-proj guidance
All workflows use the latest CodeQL Action v4 for security scanning and SARIF upload.
Testing
bash
# Run all tests (requires Node.js >=26 <27; 241 Node-API + 2,289 operation tests)
npm test# Run MCP validation test suite (1,728 tests across 75 files, with Vitest)
npm run test:mcp
# Run MCP tests with coverage report
npm run test:coverage
# Run performance benchmarks (v1.4.0+)
npm run benchmark
# Test Node.js consumer compatibility
npm run testnodeconsumer
# Lint workflows (matches the CI gate)
actionlint .github/workflows/*.yml
# Lint code
npm run lint
Test Coverage:
The MCP server maintains comprehensive test coverage:
1,728 MCP tests across 75 suites, plus 241 Node-API tests, 2,289 operation tests and 9 runnable examples executed by CI
Coverage thresholds (vitest.config.mjs): 96% lines, 95% statements, 89% branches, 96% functions, with src/node/lib/** held separately at 99 lines / 99 statements / 94 branches / 100 functions
Remains pullable; receives security-only patches on the v1.9.x line until ~March 2027.
Apache-2.0, not GPL-3.0-or-later.
Still has the single process-wide HTTP transport that
#36 reported, so only one
HTTP client can connect at a time. Fixed in v2.x, not backported.
npm Package: cyberchef-mcp — published from
CI on each version tag since v2.5.0. npx cyberchef-mcp runs the server without installing it;
npm install -g cyberchef-mcp installs the cyberchef-mcp bin. The package is the artefact the
MCP registry listing points at, which is why the release job waits for npm to serve it before
publishing that listing.
Glama Listing: doublegate/CyberChef-MCP
— an independent third-party directory that starts the server and introspects it rather than
reading its README, and scores quality and maintenance from what it finds. Ownership is declared
in glama.json at the repository root. The badges above and below render its
current scores live; they are deliberately not transcribed into this file, because a number
copied out of a service is a number that rots.
If you find this project useful, consider supporting its development:
Licensing
As of v2.0.0, CyberChef-MCP is licensed under GPL-3.0-or-later. Versions 1.9.x and
earlier remain Apache-2.0 and are unaffected.
Upstream CyberChef is released under the
Apache 2.0 Licence and is covered by
Crown Copyright.
Files inherited from upstream keep their Apache-2.0 headers; the full text is preserved in
LICENSE.Apache-2.0. This is not a relicensing of GCHQ's code — it is the
combined work that is GPLv3, which Apache-2.0's one-way compatibility with GPLv3 permits.
The change was forced by v2.0.0 incorporating algorithms from GPL-licensed reference tools:
katana is GPL-3.0-or-later (ruling out GPLv2) and John the Ripper is GPL-2.0-or-later, while
Apache-2.0 is compatible with GPLv3 but not GPLv2. GPL-3.0-or-later is the only licence that
admits all three. The reasoning is recorded in
ADR 0001, and per-component attribution is in
THIRD-PARTY-NOTICES.md.
What this means for you: running CyberChef-MCP — including serving it over HTTP — carries no
obligation, as GPLv3 has no network-use clause. Distributing a derivative of it does: that must
also be GPLv3. If your policy precludes GPLv3, stay on the v1.9.x line, which remains Apache-2.0
and receives security-only patches through its LTS window.