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nguyentrungtin1709
GitHub-Creator-Profil

nguyentrungtin1709

Repository-Ansicht von 14 gesammelten Skills in 1 GitHub-Repositories.

gesammelte Skills
14
Repositories
1
aktualisiert
14. Juni 2026
Repository-Karte

Wo die Skills liegen

Top-Repositories nach gesammelter Skill-Anzahl, mit ihrem Anteil an diesem Creator-Katalog und ihrer Berufsverteilung.

Repository-Explorer

Repositories und repräsentative Skills

firecrawl
Softwareentwickler

Firecrawl gives AI agents and apps fast, reliable web context with strong search, scraping, and interaction tools. One install command sets up three skill segments: live CLI tools, app-integration build skills, and outcome-focused workflow skills. Route the…

14. Juni 2026
commit-message
Softwareentwickler

Generate conventional commit messages - use when creating commits, writing commit messages, or asking for git commit help.

9. Juni 2026
create-decision-record
Softwareentwickler

Create a decision history record in the history/ directory. Use before writing any implementation code for a new feature, architecture change, or significant technical decision.

9. Juni 2026
develop-feature
Softwareentwickler

Full development workflow from planning through deployment for AI Agent features. Use when developing new features, making significant architecture changes, or starting work on any non-trivial implementation.

9. Juni 2026
run-tests
Softwarequalitätssicherungsanalysten und -tester

Test execution workflow - run unit tests, linting, and type checking. Use when verifying code quality, running the full test suite, or checking before a commit.

9. Juni 2026
code-review
Softwarequalitätssicherungsanalysten und -tester

Code review checklist - use for checking Python code quality, bugs, security issues, and best practices. Use when a user asks for a code review, needs to assess whether a change is safe to merge, or needs to review AI-agent code for production risk.

8. Juni 2026
debugging
Softwareentwickler

Debugging patterns and strategies - use when debugging issues, errors, or unexpected behavior. Use when a feature is failing, tests are failing, an AI/LLM workflow produces low-quality outputs, or a multi-step agent pipeline is hard to reason about.

8. Juni 2026
prompt-engineering
Softwareentwickler

Prompt writing best practices - use when creating or improving prompts for LLM agents. Use when creating or revising system prompts, tool instructions, or evaluator prompts, or when improving agent reliability, safety, or output consistency.

8. Juni 2026
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