
Changelog Generator (Grade A)Security-tested development skill for Claude AI. Grade A. Generate a CHANGELOG.md from Conventional Commit history with grouped sections and version headers. Use when the user asks to create or update
Overview
Key features
- Parses git commit history
- Identifies commit types (feat, fix, breaking changes, etc.)
- Groups changes into sections
- Generates version headers
- Validates output for sensitive information
Pricing
- Model
- Free
- Category
- Skills
- Rating
- No reviews yet
Use cases
Creating a Changelog for a New Release
Use the Changelog Generator skill to create a changelog for a new release. The skill will parse the commit history, group changes into sections, and generate a version header.
Updating an Existing Changelog
Use the Changelog Generator skill to update an existing changelog. The skill will parse the commit history, add new changes to the existing changelog, and maintain the correct format.
Pros & Cons
Pros
- Automates changelog creation
- Follows Keep a Changelog format and Conventional Commits
- Groups changes by type (Added, Fixed, Changed, etc.)
- Handles breaking changes and multiple scopes
- Validates output for sensitive information
Cons
- Requires a git repository with Conventional Commit messages
- Needs a previous version tag for proper versioning
- May not handle all edge cases perfectly
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Q&A
Why You Should Use This?
| Audience | Key Benefits | | -------------------- | ------------------------------------------------------------------------------------------------- | | Individual | 30%+ token savings, stop repeating standards, security guardrails, instant scaffolding | | Teams | Consistent AI behavior, day‑one onboarding, codified patterns, compounding cost savings | | Organizations | Always‑on compliance, same standards across 1,000 projects, central governance, measurable ROI |
Asked by Yaw Owusu · Jun 11, 2026
What You Can Customize?
| Section | What It Controls | Example | | ------------- | -------------------------- | ---------------------------------------------- | | project | Project identity | Name, description, repo URL | | techStack | Language, framework, tools | TypeScript + Express or Python + FastAPI | | paths | Directory structure | Where handlers, services, and common code live | | domain | Business entities | Order, Product, Customer + lifecycle states | | patterns | Code patterns | 7‑step handler flow, error handling strategy | | testing | Quality gates | 90% coverage, test/lint/type‑check commands | | database | DB conventions | Soft delete field, timestamp columns, naming | | packages | Internal packages | @your‑org scope, registry URL | | conventions | Git and workflow | Branch prefixes, commit format, PR templates |
Asked by Zofia Kaczmarek · May 23, 2026
What it detects?
| Category | Signals | | ------------------ | ------------------------------------------------------------------------------------------ | | Language | tsconfig.json, go.mod, Cargo.toml, requirements.txt, pom.xml, file extensions | | Framework | Dependencies in package.json / requirements.txt (React, Express, Django, Spring, etc.) | | Database | ORM configs (prisma/, sequelize, typeorm), .sql files, migration folders | | Testing | jest.config., vitest, pytest, cypress/, playwright.config. | | Infrastructure | Dockerfile, terraform/, cdk.json, serverless.yml, cloud SDK deps | | CI/CD | .github/workflows/, .gitlab-ci.yml, Jenkinsfile |
Asked by Yara Mansour · May 17, 2026
What's Inside?
| Layer | Count | What It Does | How It's Triggered | | ------------- | ----- | ------------------------------------------------- | ----------------------------------- | | Rules | 47 | Enforces coding standards on every AI interaction | Automatically — always on | | Agents | 62 | Specialized assistants for complex tasks | On demand — /agent-name | | Skills | 50 | Step‑by‑step guided workflows with checklists | Contextually — when patterns match | | Commands | 37 | Lightweight, token‑efficient quick actions | On demand — /command | | Hooks | 12 | Automation scripts in the AI loop | Event‑driven — before/after actions | | Templates | 9 | Scaffolding for handlers, components, tests, etc. | Referenced by skills and agents | ---
Asked by Margaret Whitfield · Apr 5, 2026
How It Works?
Layer 1 — Pre-Processing: Hooks inject project context and block dangerous commands before your prompt reaches the AI. Layer 2 — Rules Engine: 47 always‑on rules enforce token efficiency, security, architecture, code standards, database conventions, and testing thresholds. Layer 3 — Specialized Processing: The right component activates — an agent, skill, or command — based on your prompt. Layer 4 — Post-Processing: Hooks validate output, auto‑format, scan for secrets, and verify coverage.
Asked by Hasan Demir · Mar 8, 2026
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