agentic-engineering — for Claude Code agentic-engineering, ZWG_Terminal, community, for Claude Code, ide skills, Agentic, Engineering, perform, implementation, humans

v1.0.0

À propos de ce Skill

Scenario recommande : Ideal for AI agents that need agentic engineering. Resume localise : # Agentic Engineering Use this skill for engineering workflows where AI agents perform most implementation work and humans enforce quality and risk controls.

Fonctionnalités

Agentic Engineering
Operating Principles
Define completion criteria before execution.
Decompose work into agent-sized units.
Route model tiers by task complexity.

# Sujets clés

sayasaya8039 sayasaya8039
[1]
[0]
Mis à jour: 3/20/2026

Skill Overview

Start with fit, limitations, and setup before diving into the repository.

Scenario recommande : Ideal for AI agents that need agentic engineering. Resume localise : # Agentic Engineering Use this skill for engineering workflows where AI agents perform most implementation work and humans enforce quality and risk controls.

Pourquoi utiliser cette compétence

Recommandation : agentic-engineering helps agents agentic engineering. Agentic Engineering Use this skill for engineering workflows where AI agents perform most implementation work and humans enforce quality and risk

Meilleur pour

Scenario recommande : Ideal for AI agents that need agentic engineering.

Cas d'utilisation exploitables for agentic-engineering

Cas d'usage : Applying Agentic Engineering
Cas d'usage : Applying Operating Principles
Cas d'usage : Applying Define completion criteria before execution

! Sécurité et Limitations

  • Limitation : Do not waste review cycles on style-only disagreements when automated format/lint already enforce style.
  • Limitation : Escalate model tier only when lower tier fails with a clear reasoning gap.
  • Limitation : Requires repository-specific context from the skill documentation

About The Source

The section below comes from the upstream repository. Use it as supporting material alongside the fit, use-case, and installation summary on this page.

Démo Labs

Browser Sandbox Environment

⚡️ Ready to unleash?

Experience this Agent in a zero-setup browser environment powered by WebContainers. No installation required.

Boot Container Sandbox

FAQ et étapes d’installation

These questions and steps mirror the structured data on this page for better search understanding.

? Questions fréquentes

Qu’est-ce que agentic-engineering ?

Scenario recommande : Ideal for AI agents that need agentic engineering. Resume localise : # Agentic Engineering Use this skill for engineering workflows where AI agents perform most implementation work and humans enforce quality and risk controls.

Comment installer agentic-engineering ?

Exécutez la commande : npx killer-skills add sayasaya8039/ZWG_Terminal. Elle fonctionne avec Cursor, Windsurf, VS Code, Claude Code et plus de 19 autres IDE.

Quels sont les cas d’usage de agentic-engineering ?

Les principaux cas d’usage incluent : Cas d'usage : Applying Agentic Engineering, Cas d'usage : Applying Operating Principles, Cas d'usage : Applying Define completion criteria before execution.

Quels IDE sont compatibles avec agentic-engineering ?

Cette skill est compatible avec Cursor, Windsurf, VS Code, Trae, Claude Code, OpenClaw, Aider, Codex, OpenCode, Goose, Cline, Roo Code, Kiro, Augment Code, Continue, GitHub Copilot, Sourcegraph Cody, and Amazon Q Developer. Utilisez la CLI Killer-Skills pour une installation unifiée.

Y a-t-il des limites pour agentic-engineering ?

Limitation : Do not waste review cycles on style-only disagreements when automated format/lint already enforce style.. Limitation : Escalate model tier only when lower tier fails with a clear reasoning gap.. Limitation : Requires repository-specific context from the skill documentation.

Comment installer ce skill

  1. 1. Ouvrir le terminal

    Ouvrez le terminal ou la ligne de commande dans le dossier du projet.

  2. 2. Lancer la commande d’installation

    Exécutez : npx killer-skills add sayasaya8039/ZWG_Terminal. La CLI détectera automatiquement votre IDE ou votre agent et configurera la skill.

  3. 3. Commencer à utiliser le skill

    Le skill est maintenant actif. Votre agent IA peut utiliser agentic-engineering immédiatement dans le projet.

! Source Notes

This page is still useful for installation and source reference. Before using it, compare the fit, limitations, and upstream repository notes above.

Upstream Repository Material

The section below comes from the upstream repository. Use it as supporting material alongside the fit, use-case, and installation summary on this page.

Upstream Source

agentic-engineering

Install agentic-engineering, an AI agent skill for AI agent workflows and automation. Explore features, use cases, limitations, and setup guidance.

SKILL.md
Readonly
Upstream Repository Material
The section below comes from the upstream repository. Use it as supporting material alongside the fit, use-case, and installation summary on this page.
Upstream Source

Agentic Engineering

Use this skill for engineering workflows where AI agents perform most implementation work and humans enforce quality and risk controls.

Operating Principles

  1. Define completion criteria before execution.
  2. Decompose work into agent-sized units.
  3. Route model tiers by task complexity.
  4. Measure with evals and regression checks.

Eval-First Loop

  1. Define capability eval and regression eval.
  2. Run baseline and capture failure signatures.
  3. Execute implementation.
  4. Re-run evals and compare deltas.

Task Decomposition

Apply the 15-minute unit rule:

  • each unit should be independently verifiable
  • each unit should have a single dominant risk
  • each unit should expose a clear done condition

Model Routing

  • Haiku: classification, boilerplate transforms, narrow edits
  • Sonnet: implementation and refactors
  • Opus: architecture, root-cause analysis, multi-file invariants

Session Strategy

  • Continue session for closely-coupled units.
  • Start fresh session after major phase transitions.
  • Compact after milestone completion, not during active debugging.

Review Focus for AI-Generated Code

Prioritize:

  • invariants and edge cases
  • error boundaries
  • security and auth assumptions
  • hidden coupling and rollout risk

Do not waste review cycles on style-only disagreements when automated format/lint already enforce style.

Cost Discipline

Track per task:

  • model
  • token estimate
  • retries
  • wall-clock time
  • success/failure

Escalate model tier only when lower tier fails with a clear reasoning gap.

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