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tracking-model-versions

jeremylongshore
更新日 Yesterday
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メタaiautomation

について

このスキルは、モデルバージョニングトラッカープラグインを使用して、ClaudeがAI/MLモデルのバージョン管理とモデルの系譜追跡を可能にします。開発者がモデルのパフォーマンスを記録したり、バージョン管理を実装したり、MLflowなどのツールを扱う必要がある場合にご利用ください。これにより、モデルワークフローの自動化とバージョン管理のベストプラクティスの実装が容易になります。

クイックインストール

Claude Code

推奨
プラグインコマンド推奨
/plugin add https://github.com/jeremylongshore/claude-code-plugins-plus
Git クローン代替
git clone https://github.com/jeremylongshore/claude-code-plugins-plus.git ~/.claude/skills/tracking-model-versions

このコマンドをClaude Codeにコピー&ペーストしてスキルをインストールします

ドキュメント

Overview

This skill empowers Claude to interact with the model-versioning-tracker plugin, providing a streamlined approach to managing and tracking AI/ML model versions. It ensures that model development and deployment are conducted with proper version control, logging, and performance monitoring.

How It Works

  1. Analyze Request: Claude analyzes the user's request to determine the specific model versioning task.
  2. Generate Code: Claude generates the necessary code to interact with the model-versioning-tracker plugin.
  3. Execute Task: The plugin executes the code, performing the requested model versioning operation, such as tracking a new version or retrieving performance metrics.

When to Use This Skill

This skill activates when you need to:

  • Track new versions of AI/ML models.
  • Retrieve performance metrics for specific model versions.
  • Implement automated workflows for model versioning.

Examples

Example 1: Tracking a New Model Version

User request: "Track a new version of my image classification model."

The skill will:

  1. Generate code to log the new model version and its associated metadata using the model-versioning-tracker plugin.
  2. Execute the code, creating a new entry in the model registry.

Example 2: Retrieving Performance Metrics

User request: "Get the performance metrics for version 3 of my sentiment analysis model."

The skill will:

  1. Generate code to query the model-versioning-tracker plugin for the performance metrics associated with the specified model version.
  2. Execute the code and return the metrics to the user.

Best Practices

  • Data Validation: Ensure input data is validated before logging model versions.
  • Error Handling: Implement robust error handling to manage unexpected issues during version tracking.
  • Performance Monitoring: Continuously monitor model performance to identify opportunities for optimization.

Integration

This skill integrates with other Claude Code plugins by providing a centralized location for managing AI/ML model versions. It can be used in conjunction with plugins that handle data processing, model training, and deployment to ensure a seamless AI/ML workflow.

GitHub リポジトリ

jeremylongshore/claude-code-plugins-plus
パス: backups/skills-batch-20251204-000554/plugins/ai-ml/model-versioning-tracker/skills/model-versioning-tracker
aiautomationclaude-codedevopsmarketplacemcp

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