ai-ml-engineer
This copilot guides you through machine learning workflows—from model design and data preparation through training, evaluation, and production deployment. It covers supervised and unsupervised learning, deep learning, NLP, computer vision, and LLM applications, with structured dialogue to clarify your project needs and constraints.
AI/ML Engineer helps you develop, train, and deploy machine learning models with MLOps best practices.
AI-generated summary based on this skill's SKILL.md
Install
nahisaho/MUSUBI/ai-ml-engineer · repository language: HTML
git clone https://github.com/nahisaho/MUSUBI
cp -r MUSUBI/.claude/skills/ai-ml-engineer ~/.claude/skills/ai-ml-engineernpx skillfed install nahisaho/MUSUBI/ai-ml-engineerFrequently asked questions
AI-generated answers based on this skill's SKILL.md and metadata
How do I build ML models from scratch with ai-ml-engineer?
ai-ml-engineer guides you through end-to-end model development: defining your problem, preparing and engineering features, selecting algorithms, training with hyperparameter tuning, and rigorous evaluation. The copilot clarifies your project constraints and recommends supervised or unsupervised approaches, deep learning architectures, or specialized methods like NLP transformers and computer vision models based on your use case.
What does ai-ml-engineer cover for model deployment and MLOps?
ai-ml-engineer helps you deploy ML models to production following MLOps best practices. It covers containerization, orchestration with Kubernetes, experiment tracking with MLflow, versioning, and CI/CD pipelines. The copilot ensures your models are reproducible, scalable, and maintainable in production environments.
Can ai-ml-engineer help with deep learning neural networks?
Yes. ai-ml-engineer provides tutorials and guidance on deep learning architectures for NLP and computer vision applications. It covers transformer-based models for text classification, image recognition systems, and helps you choose between frameworks like PyTorch and TensorFlow based on your project needs.
Does ai-ml-engineer support LLM fine-tuning and RAG systems?
ai-ml-engineer includes support for implementing LLM fine-tuning, prompt engineering, and retrieval-augmented generation (RAG) systems. It helps you build generative AI features and integrate large language models into your applications with structured guidance on best practices.
How does ai-ml-engineer help monitor model performance?
ai-ml-engineer guides you on monitoring model performance in production and detecting data drift and concept drift. It covers evaluation metrics, validation strategies, and drift detection techniques to ensure your models remain reliable and accurate over time.
What machine learning model development topics does ai-ml-engineer cover?
ai-ml-engineer covers feature engineering, hyperparameter tuning, model optimization, ensemble learning, time series forecasting, anomaly detection, reinforcement learning, and evaluation metrics. It helps you understand trade-offs between approaches and select the right techniques for your specific problem.
SKILL.md
rendered from the published skill — quoted content, verbatim
AI/ML Engineer AI
1. Role Definition
You are an AI/ML Engineer AI. You design, develop, train, evaluate, and deploy machine learning models while implementing MLOps practices through structured dialogue in Japanese.
2. Areas of Expertise
- Machine Learning Model Development: Supervised Learning (Classification, Regression, Time Series Forecasting), Unsupervised Learning (Clustering, Dimensionality Reduction, Anomaly Detection), Deep Learning (CNN, RNN, LSTM, Transformer, GAN), Reinforcement Learning (Q-learning, Policy Gradient, Actor-Critic)
- Data Processing and Feature Engineering: Data Preprocessing (Missing Value Handling, Outlier Handling, Normalization), Feature Engineering (Feature Selection, Feature Generation), Data
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.claude/skills/ai-ml-engineer/SKILL.md
.claude/skills/ai-ml-engineer/mlops-guide.md
.claude/skills/ai-ml-engineer/model-card-template.md