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jeremylongshore

adk-agent-builder

by jeremylongshore

Hundreds of Claude Code plugins with embedded AI skills. Learn via interactive Jupyter tutorials.

1,042🍴 135📅 Jan 23, 2026

SKILL.md


name: adk-agent-builder description: | Build production-ready AI agents using Google's Agent Development Kit with AI assistant integration, React patterns, multi-agent orchestration, and comprehensive tool libraries. Use when appropriate context detected. Trigger with relevant phrases based on skill purpose. allowed-tools: Read, Write, Edit, Grep, Bash(cmd:*) version: 1.0.0 author: Jeremy Longshore jeremy@intentsolutions.io license: MIT

ADK Agent Builder

Build production-ready agents with Google’s Agent Development Kit (ADK): scaffolding, tool wiring, orchestration patterns, testing, and optional deployment to Vertex AI Agent Engine.

Overview

  • Creates a minimal, production-oriented ADK scaffold (agent entrypoint, tool registry, config, and tests).
  • Supports single-agent ReAct-style workflows and multi-agent orchestration (Sequential/Parallel/Loop).
  • Produces a validation checklist suitable for CI (lint/tests/smoke prompts) and optional Agent Engine deployment verification.

Prerequisites

  • Python runtime compatible with your project (often Python 3.10+)
  • google-adk installed and importable
  • If deploying: access to a Google Cloud project with Vertex AI enabled and permissions to deploy Agent Engine runtimes
  • Secrets available via environment variables or a secret manager (never hardcoded)

Instructions

  1. Confirm scope: local-only agent scaffold vs Vertex AI Agent Engine deployment.
  2. Choose an architecture:
    • Single agent (ReAct) for adaptive tool-driven tasks
    • Multi-agent system (specialists + orchestrator) for complex, multi-step workflows
  3. Define the tool surface (built-in ADK tools + any custom tools you need) and required credentials.
  4. Scaffold the project:
    • src/agents/, src/tools/, tests/, and a dependency file (pyproject.toml or requirements.txt)
  5. Implement the minimum viable agent and a smoke test prompt; add regression tests for tool failures.
  6. If deploying, produce an adk deploy ... command and a post-deploy validation checklist (AgentCard/task endpoints, permissions, logs).

Output

  • A repo-ready ADK scaffold (files and directories) plus starter agent code
  • Tool stubs and wiring points (where to add new tools safely)
  • A test + validation plan (unit tests and a minimal smoke prompt)
  • Optional: deployment commands and verification steps for Agent Engine

Error Handling

  • Dependency/runtime issues: provide pinned install commands and validate imports.
  • Auth/permission failures: identify the missing role/API and propose least-privilege fixes.
  • Tool failures/rate limits: add retries/backoff guidance and a regression test to prevent recurrence.

Examples

Example: Scaffold a single ReAct agent

  • Request: “Create an ADK agent that summarizes PRs and proposes test updates.”
  • Result: agent entrypoint + tool registry + a smoke test command for local verification.

Example: Multi-agent orchestrator

  • Request: “Build a supervisor + deployer + verifier team and deploy to Agent Engine.”
  • Result: orchestrator skeleton, per-agent responsibilities, and adk deploy ... + post-deploy health checks.

Resources

  • Full detailed guide (kept for reference): {baseDir}/references/SKILL.full.md
  • Repo standards (source of truth):
    • 000-docs/6767-a-SPEC-DR-STND-claude-code-plugins-standard.md
    • 000-docs/6767-b-SPEC-DR-STND-claude-skills-standard.md
  • ADK / Agent Engine docs: https://cloud.google.com/vertex-ai/docs/agent-engine

Score

Total Score

85/100

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