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Model Evaluation Suite

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This skill allows claude to evaluate machine learning models using a

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  • Added February 7, 2026
testingbashtestingperformance

Works with

  • claude code

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npx -y skills add BbgnsurfTech/claude-skills-collection --skill model-evaluation-suite --agent claude-code

Installs into .claude/skills of the current project.

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SKILL.md
---
description: This skill allows claude to evaluate machine learning models using a
  comprehensive suite of metrics. it should be used when the user requests model performance
  analysis, validation, or testing. claude can use this skill to assess model accuracy,
  p...
allowed-tools:
- Read
- Write
- Edit
- Grep
- Glob
- Bash
name: evaluating-machine-learning-models
license: MIT
---
## Overview

This skill empowers Claude to perform thorough evaluations of machine learning models, providing detailed performance insights. It leverages the `model-evaluation-suite` plugin to generate a range of metrics, enabling informed decisions about model selection and optimization.

## How It Works

1. **Analyzing Context**: Claude analyzes the user's request to identify the model to be evaluated and any specific metrics of interest.
2. **Executing Evaluation**: Claude uses the `/eval-model` command to initiate the model evaluation process within the `model-evaluation-suite` plugin.
3. **Presenting Results**: Claude presents the generated metrics and insights to the user, highlighting key performance indicators and potential areas for improvement.

## When to Use This Skill

This skill activates when you need to:
- Assess the performance of a machine learning model.
- Compare the performance of multiple models.
- Identify areas where a model can be improved.
- Validate a model's performance before deployment.

## Examples

### Example 1: Evaluating Model Accuracy

User request: "Evaluate the accuracy of my image classification model."

The skill will:
1. Invoke the `/eval-model` command.
2. Analyze the model's performance on a held-out dataset.
3. Report the accuracy score and other relevant metrics.

### Example 2: Comparing Model Performance

User request: "Compare the F1-score of model A and model B."

The skill will:
1. Invoke the `/eval-model` command for both models.
2. Extract the F1-score from the evaluation results.
3. Present a comparison of the F1-scores for model A and model B.

## Best Practices

- **Specify Metrics**: Clearly define the specific metrics of interest for the evaluation.
- **Data Validation**: Ensure the data used for evaluation is representative of the real-world data the model will encounter.
- **Interpret Results**: Provide context and interpretation of the evaluation results to facilitate informed decision-making.

## Integration

This skill integrates seamlessly with the `model-evaluation-suite` plugin, providing a comprehensive solution for model evaluation within the Claude Code environment. It can be combined with other skills to build automated machine learning workflows.

Files in this skill

  • SKILL.md2.6 KB
  • assets/README.md359 B
  • assets/visualization_script.py5.5 KB
  • references/README.md397 B
  • scripts/README.md407 B
  • scripts/data_loader.py2.8 KB
  • scripts/evaluate_model.py2.8 KB
  • scripts/metrics_calculator.py2.8 KB

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