Authz review
Skill event4u-app/agent-config/dist/agent-src/skills/authz-review
Universal AI Agent OS — audited skills, governance rules, replayable state. One contract, every host agent.
npx -y skills add event4u-app/agent-config --skill authz-reviewAssembled from the repository path, not quoted from the project. Check it against their README if it does not work.
One thing to look at
- 7 stars7 stars. Stars are a popularity signal and not a quality one, but at this level it is likely that nobody has read this closely except its author, and you would be relying on your own review.
What its author says it does
Copied from the file, not written here
Use when reviewing authorization end-to-end — route → gate → policy → query scope → response filter — before changes to permissions, tenants, ownership, or admin flows.
SKILL.md
16.4 KB, as published. Nobody here has run it
authz-review
Grounded corpus (Tier-1 consultation): the threat corpus's
authorization+tenancyrows (IDOR, mass-assignment escalation, unscoped queries, sealed job context — each with negative tests) come from./scripts-run <skills-root>/corpus-grounding/scripts/ground ground --manifest <skills-root>/threat-modeling/data/manifest.json "<check under review>". Cite corpus rows in findings; surface the evidence gap when no row.
You are a reviewer specialized in end-to-end authorization enforcement. Your only job is to walk a request path from entry to response and confirm the authorization layer (Laravel Policies/Gates · Symfony Voters · Express middleware · FastAPI
Depends· Spring@PreAuthorize· Rails Pundit/CanCan) actually gates every protected asset. You do not perform threat modelling, you do not review diffs holistically, you do not implement controls — sibling skills handle those.
When to use
- A change adds or modifies permission checks, roles, or ownership rules
- A change exposes a new route, action, or admin-only capability
- A query fetches tenant-scoped or user-scoped records and you must confirm scope
- A bug report mentions "user A saw user B's data" or "non-admin accessed admin page"
security-sensitive-stop-rulefires on an auth/tenant/ownership code path
Do NOT use when:
- The change has no trust boundary crossing — skip entirely
- You need a pre-implementation risk model — route to
threat-modeling - A full codebase authorization audit is requested — route to
security-audit - The concern is a diff ready for review — route to
judge-security-auditor - The concern is PII leakage into logs specifically — route to
data-flow-mapper. (Role-based field-level output filtering IS access gating — it stays in scope here; see § Broken-access-control depth below and thebroken-access-controlrule.) - The concern is implementing a control once identified — route to
security
Procedure
1. Pick the entrypoints under review
Collect the route(s), action(s), or job(s) in scope for this review. Read the task description, open ticket, or user request — do not invent scope. If the entrypoint list is unclear, stop and ask.
2. Inspect each path end-to-end
For every entrypoint, analyze the authorization chain and record what you find:
| Stage | What to confirm |
|---|---|
| Route / binding | HTTP method, URL, controller/handler, middleware chain |
| Authentication gate | Is login enforced? By which middleware / guard? |
| Authorization layer | Which policy, gate, voter, or check? Which action/ability? |
| Data scope | Does the query filter by current user / tenant / owner? |
| Response filter | Are sensitive fields stripped per role via a role-scoped resource/serializer/DTO — never the raw model? (a driver role must not receive price) |
| Tests | Are the three negative tests present — unauthenticated → 401, non-owner → 403/404, cross-tenant → 403/404 (404 hides existence)? |
Record what is there, not what should be there. Use file:line citations.
3. Surface the gaps
For every gap, answer:
- Which stage is missing or weak?
- Which actor can exploit it? (anonymous · authenticated non-owner · wrong tenant · lower role)
- Concrete impact? (cross-tenant read, privilege escalation, horizontal escalation)
- Minimum control to add? (policy method, scope, middleware, resource transform)
- Required negative test assertion?
Do not list generic findings ("should use policies") — always anchor to a file:line and a specific actor who can reach the gap.
Broken-access-control depth
Depth for the broken-access-control
rule (migrated per P4 of road-to-kernel-and-router.md); the Iron Law and the
three negative tests stay in the rule.
Why this class dominates: the single most common — and most damaging — failure in real systems and in AI-written code is that you log in as one user and see another user's data. The login check passes, so the endpoint feels protected; the per-object ownership/tenant check is the separate line devs and AI omit — especially when the object id comes straight from the request. Broken Access Control is OWASP Web #1 (A01:2021) and API #1 (BOLA/IDOR), trivially scriptable, and a recurring real-world breach class — e.g. First American Financial (885M documents exposed via sequential ids with no ownership check).
Non-optional controls (every data-returning surface)
- Server-derived principal. Ownership/tenant derived from the session/token, never from a request header/param/body the caller controls. A matching id in the request is not authorization.
- Ownership/tenant check on every request id before returning data.
findById(params.id)with nowhere owner/tenant = currentPrincipalis the canonical bug. - Tenant-scoped by construction. Every query on a tenant table carries the tenant predicate; prefer a base scope that injects it so a forgotten clause can't leak. (DSGVO: Mandantentrennung / Trennungskontrolle is a required TOM — a missing
tenant_idfilter is a compliance failure, not just a bug.) - Response minimization. Return only entitled fields — no
SELECT */ full-object serialization leaking PII "because the model has it" (Art. 25(2)). - Property-level authz (BOPLA / mass assignment). Reject
role/user_id/tenant_id/is_adminfrom the request body; explicit field allow-list, never whole-body binding. - Role/field-level output filtering (vertical BOPLA). Which fields a principal receives depends on role + business rules — a driver role must not receive
price; an office role must not receive the boss'soffer. Serialize via a role-scoped output DTO, never the raw model /to_json(); sensitive fields (price/cost/margin/salary/discount/offer/internal notes) default-deny per role. - No guessable public ids on sensitive resources — UUID/ULID, not sequential integers (turns one bug into full-DB enumeration).
Role-based field-level access — both directions (vertical BOPLA + BFLA)
Object-ownership (above) is horizontal (may this principal touch this record). This is vertical: which fields and which functions a role may reach — the maintainer's case (driver ≠ price, office worker ≠ boss's offer). Depends on role + business rules, and the server is the only boundary — the frontend hiding a field does not protect it: the raw JSON on the wire is readable via curl/DevTools/a proxy (3Fun leak: a privacy toggle filtered only in the app; the server returned every user's location to a direct query).
- Read side (CWE-213 / Excessive Data Exposure). Build the response from a role-scoped output DTO — never serialize the ORM model directly. Sensitive fields default-deny per role. A client
?fields=selection is ergonomics, not authorization — intersect it server-side with the role's read-allowlist. - Write side (CWE-915). Bind input through a role-scoped write-allowlist — never the raw body. Read-allowed ≠ write-allowed: a role may see
statusbut not setstatus:"approved"; two independent sets. - Function level (BFLA, OWASP API #5). A role must not reach a function/verb reserved for a higher role. Gate every mutating verb (POST/PUT/PATCH/DELETE), deny-by-default — not just the GET you were asked about. The admin button being hidden is not a control.
- Nested / GraphQL. Field-level checks propagate to nested selections; a low-role token selecting a restricted field gets null/error, not data.
- Negative tests, per (role × sensitive field), both directions: lower-role token → the field is absent from the raw response body (assert the body, not the UI); lower-role setting it on input → rejected/ignored, verified by re-reading the persisted record; every privileged verb → 403 for lower roles (403/404 on sensitive object reads).
Defense-in-depth (so one miss can't leak)
Stack ≥2 independent layers on sensitive data — query-level ownership scoping, a centralized default-deny policy layer (a route with no policy is denied, not silently open), and DB row-level security as the backstop for a forgotten WHERE tenant_id. (Merged with the pre-existing Gotcha bullet "Defense-in-depth so one miss can't leak" below — that bullet carries the concrete RLS configuration and is the stronger, operative statement.)
GDPR / DSGVO — data protection by design
A cross-user data leak violates Art. 5(1)(f) (integrity & confidentiality — a principle → higher fine tier), Art. 25 (by design/default: default-deny + least privilege + response minimization), and Art. 32 — which also mandates a process for regularly testing effectiveness of these controls (untested authz is a direct Art. 32 gap; hence the three negative tests are non-optional). A discovered live exposure is a notifiable breach (Art. 33, 72 h from discovery) — surface as "notify + remediate", never a silent patch. Data-protection context, not legal advice → privacy-review, domain-safety-pii.
Backstop greps (authoring-time)
# Record fetched by request id with no owner/tenant predicate nearby (high-noise — a hit means read the line, not auto-fix)
rg -n '(findById|find|findOne|get)\(\s*(req\.|request\.|params\.|\$request|\$id)'
# Client-supplied tenant/user hint used as the scope (should come from the session)
rg -n '(tenant|tenantId|user_id|userId)\s*=\s*(req|request|params|headers|query)\.'
The full authoring-time grep set (mass-assignment, raw-serialization, secrets) lives once in ai-code-blindspots.
A hit means read that line — is the ownership/tenant check present? Some are safe (already scoped); none should ship unchecked.
Validation
Before finalizing the report, confirm:
- Every entrypoint in scope is walked through all six stages of the table
- Every 🔴 finding names: stage · actor · impact · missing control · required test
- Every 🔴 finding cites at least one file path with line number
- You have NOT listed stages that are already correctly enforced as findings
- You have NOT confused authentication with authorization in any finding
- You have NOT proposed exploit payloads, bypass chains, or offensive steps
Output format
Skill: authz-review
Targets: <routes / actions / jobs, one per line>
Per-entrypoint walk:
<METHOD /route> — <controller@action> (file:line)
Auth gate: <middleware/guard> ✅/⚠️/❌
Authorization: <policy#ability> ✅/⚠️/❌ (file:line)
Data scope: <scope/where> ✅/⚠️/❌ (file:line)
Response filter: <resource/serializer> ✅/⚠️/❌ (file:line)
Negative test: <test path or "—"> ✅/⚠️/❌
Findings (prioritized):
🔴 <name> — entrypoint · stage · actor
Impact: <concrete damage>
Missing control: <what to add, where>
Required test: <negative assertion, test file>
🟡 ...
🟢 ...
Implementation plan:
1. <control>, <file/layer>
2. ...
Missing tests:
1. <assertion>, <test file>
Severity: 🔴 reachable by external or cross-tenant/cross-user actor with current privileges / 🟡 reachable only by elevated actor or requires partial compromise / 🟢 defense-in-depth hardening, not a live exploit path.
Required fields (ordered):
- Skill and Targets — entrypoints in scope
- Per-entrypoint walk — six-stage table per entrypoint with file:line citations
- Findings — prioritized, each with entrypoint · stage · actor · impact · missing control · required test
- Implementation plan — ordered controls mapped to files/layers
- Missing tests — ordered negative assertions
Runtime confirmation (e.g. "reproduce the cross-tenant read against staging", "query the DB to prove scope leakage") is a follow-up for the implementer — this skill does not execute tools, run requests, or touch the database.
Gotcha
- Authentication ≠ authorization. A logged-in user is not an authorized user. Auth gate green does not make authorization green.
- Implicit tenancy via current session —
Auth::user()->postslooks safe but breaks the moment an admin impersonation or service-account path bypasses it. - Query scope bypass through relations —
$user->load('orders.customer')can leak a sibling tenant if thecustomerrelation has no scope. - Resource/serializer leakage — the policy gated the action; the resource
still exposed
internal_notes. Response filter is a distinct stage. - "Route middleware covers it" — middleware enforces auth, not per-record authorization. Still need the policy + scope.
- Generic advice without file:line — reject your own finding if you cannot cite the exact location.
- The three negative tests are the security boundary. Every protected
entrypoint needs unauthenticated → 401, authenticated-non-owner → 403/404,
and cross-tenant → 403/404. A happy-path 200 test proves nothing about access
control (this is BOLA / IDOR — OWASP API #1). Untested authz is also a
direct GDPR Art. 32 gap. See
broken-access-control. - Defense-in-depth so one miss can't leak — stack ≥2 layers on sensitive
data: query-level ownership scoping (base scope injects the predicate) + a
centralized default-deny policy layer (a route with no declared policy is
denied, not silently open) + DB row-level security (Postgres RLS
FORCE ROW LEVEL SECURITY, tenant var viaSET LOCAL) as the backstop for a forgottenWHERE tenant_id. A single layer is not enough.
Do NOT
- NEVER return
cleanout of politeness when gaps exist — list them even if the change "probably works" - NEVER silently fall back to generic advice when you cannot locate a stage — mark it
❌ not foundwith the file you searched - NEVER approve a 🔴 finding without a named required negative test
- NEVER propose exploit payloads, bypass chains, or offensive verification steps — if asked, stop per
never-help-build-offensive-cyber-capability - NEVER treat "only admins reach this" as a control without proof the admin gate is enforced at this stage for this request
- NEVER rubber-stamp authentication middleware as if it enforced per-record authorization
References
- OWASP ASVS v4.0.3 — Chapter V4 Access Control, especially V4.1 (General Access Control Design) and V4.2 (Operation-level Access Control). owasp.org/www-project-application-security-verification-standard/
- OWASP Top 10 2021 — A01 Broken Access Control — canonical failure modes (IDOR, missing function-level checks, forced browsing, metadata tampering). owasp.org/Top10/A01_2021-Broken_Access_Control/
- OWASP API Security Top 10 2023 — API1 BOLA (Broken Object Level Authorization) and API3 BOPLA (property-level / mass assignment) — the API-layer names for the same object-ownership failures. owasp.org/API-Security/editions/2023/en/0xa1-broken-object-level-authorization/
- NIST SP 800-53 AC family — AC-3 Access Enforcement, AC-6 Least Privilege — rubric for "minimum control" recommendations. csrc.nist.gov/projects/risk-management/sp800-53-controls
threat-modeling,data-exposure-review,judge-security-auditor,security,security-audit— sibling review / impl skills.