Agent Skillsgoogle/skills › agent-platform-tuning-management

agent-platform-tuning-management

GitHub

管理Agent平台中的GenAI微调任务,支持查询状态、列表展示及取消运行中的作业。通过Python SDK实现,包含环境配置及安全确认机制,区分只读与破坏性操作权限。

skills/cloud/agent-platform-tuning-management/SKILL.md google/skills

触发场景

用户需要查看或列出当前的模型微调任务 用户希望检查特定微调任务的详细状态 用户想要取消正在进行的长时间运行的微调作业

安装

npx skills add google/skills --skill agent-platform-tuning-management -g -y
更多选项

非标准路径

npx skills add https://github.com/google/skills/tree/main/skills/cloud/agent-platform-tuning-management -g -y

不安装直接使用

npx skills use google/skills@agent-platform-tuning-management

指定 Agent (Claude Code)

npx skills add google/skills --skill agent-platform-tuning-management -a claude-code -g -y

安装 repo 全部 skill

npx skills add google/skills --all -g -y

预览 repo 内 skill

npx skills add google/skills --list

SKILL.md

Frontmatter
{
    "name": "agent-platform-tuning-management",
    "metadata": {
        "category": "AiAndMachineLearning"
    },
    "description": "Manages GenAI tuning jobs in Agent Platform. Use this to list, get, or cancel ongoing model tuning jobs. Don't use for fine-tuning models (use `agent-platform-tuning`), deploying models to endpoints (use `agent-platform-deploy`), or managing serving endpoints (use `agent-platform-endpoint-management`)."
}

Agent Platform Tuning Management

This skill provides instructions on how to manage GenAI Tuning Jobs using the Agent Platform Python SDK. Use this skill when a user wants to check the status of their tuning runs, find an active tuning job, or cancel a job that is running too long.

Safety & Confirmation Tiers (CRITICAL)

Before executing any commands on behalf of the user, you MUST adhere to the following safety tiers based on the action requested:

  1. Tier R: Read-only (list, get)
    • Rule: No confirmation needed. You may execute these commands immediately to gather information for the user.
  2. Tier D: Destructive & Interruptive (cancel)
    • Rule: This requires explicit typed confirmation. You MUST output a text message to the user explaining that this will stop the tuning process and any progress will be lost, and asking them to type "I confirm" or "Yes, cancel it". You MUST ask for this confirmation IMMEDIATELY, before executing the cancel command.

Phase 0: Environment Setup

CRITICAL: Before running any of the Python snippets below, you MUST ensure the environment is correctly initialized by following these steps:

  1. Google Cloud Authentication: Authenticate with your Google Cloud account and configure active Application Default Credentials (ADC) for Agent Platform access:

    gcloud auth login
    gcloud auth application-default login
    
  2. Python Dependencies: This skill needs google-cloud-aiplatform. Do not create a virtual environment — it starts empty and hides packages the environment already provides, forcing a redundant install. Probe, and install only what is missing:

    python3 -c "import vertexai" || pip install google-cloud-aiplatform
    
  3. Execution: Run Python snippets with a plain python3. There is no environment to activate first.

Workflow Decision Tree

  1. Information Gathering: Do you have a Project ID and Region?

    • No -> You MUST ask the user for the missing Project ID and Region in plain text, or advise them to check their gcloud configuration. If neither location has this information, then ask the user to provide it. Do not attempt to search random regions on your own.
    • Yes -> Proceed to Step 2.
  2. Task Type: What does the user want to do?

    • Find or List Jobs -> Use the Python SDK to list tuning jobs. (Tier R)
    • Check Status / Inspect a Specific Job -> Use the Python SDK to get tuning job details. (Tier R)
    • Cancel a Job -> Ask for confirmation, then use the Python SDK to cancel the tuning job. (Tier D)

Using the Python SDK

[!NOTE]

Resource Verification & Missing Projects/Jobs: If the execution of the Python snippet fails with an error (such as 403 Permission Denied, 404 Not Found, INVALID_ARGUMENT, or indicating a dummy/missing project or job ID), you MUST inform the user that the project or tuning job does not exist or cannot be accessed. You MUST prompt the user to provide a valid Project ID or Job ID, and stop tool execution immediately to wait for their response. Do NOT retry or loop, do NOT assume the resource is valid, and do NOT execute further scripts before receiving valid details from the user.

1. Listing Tuning Jobs (Tier R)

If the user asks "What tuning jobs do I have running?" or wants to find a specific job ID:

from google.cloud import aiplatform_v1

project_id = "YOUR_PROJECT_ID"
region = "YOUR_REGION"
parent = f"projects/{project_id}/locations/{region}"

client = aiplatform_v1.GenAiTuningServiceClient(
    client_options={"api_endpoint": f"{region}-aiplatform.googleapis.com"}
)

jobs = client.list_tuning_jobs(parent=parent)
for job in jobs:
    print(f"Name: {job.name}")
    print(f"Base Model: {job.base_model}")
    print(f"State: {job.state}")

2. Getting Details for a Specific Job (Tier R)

If the user provides a Tuning Job ID and asks for its status:

from google.cloud import aiplatform_v1

project_id = "YOUR_PROJECT_ID"
region = "YOUR_REGION"
job_id = "YOUR_JOB_ID"  # 19-digit ID
name = f"projects/{project_id}/locations/{region}/tuningJobs/{job_id}"

client = aiplatform_v1.GenAiTuningServiceClient(
    client_options={"api_endpoint": f"{region}-aiplatform.googleapis.com"}
)

job = client.get_tuning_job(name=name)
print(f"Name: {job.name}")
print(f"Base Model: {job.base_model}")
print(f"State: {job.state}")
print(f"Tuning Model: {job.tuned_model_display_name}")

3. Canceling a Job (Tier D)

If the user explicitly requests to stop, abort, or cancel a running tuning job:

Safety Check: Action requires explicit typed confirmation before proceeding. You MUST ask the user for confirmation before generating or providing this script, even if they provided the job ID, unless they explicitly use confirming language like "Yes, I confirm, cancel tuning job 123456".

[!IMPORTANT]

NEVER pre-emptively provide or execute any cancellation code before receiving the user's response in a new turn. You must never speculate or assume that confirmation will be given. Asking for confirmation and providing the code in a single parallel turn is a severe safety violation.

from google.cloud import aiplatform_v1

project_id = "YOUR_PROJECT_ID"
region = "YOUR_REGION"
job_id = "YOUR_JOB_ID"  # 19-digit ID
name = f"projects/{project_id}/locations/{region}/tuningJobs/{job_id}"

client = aiplatform_v1.GenAiTuningServiceClient(
    client_options={"api_endpoint": f"{region}-aiplatform.googleapis.com"}
)

client.cancel_tuning_job(name=name)
print(f"Successfully requested cancellation for {name}")

版本历史

  • 70c343b 当前 2026-08-01 02:21

    1. 移除虚拟环境创建,改为检测并仅安装缺失依赖;2. 修正pip版本解析bug及vertexai包安装错误;3. 升级google-genai至>=1.74.0以支持enterprise参数。

  • 05679aa 2026-07-31 07:57

    更新Agent Platform相关技能指南,刷新了模型部署、微调、推理等模块的最新指导,并将agent-platform-tuning中的基础模型ID改为从实时目录读取而非硬编码。

  • aabe37a 2026-07-05 15:28

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元信息

文件数
0
版本
41f503f
Hash
305b66ed
收录时间
2026-07-05 15:28

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