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sigma-domains

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آخر تحديث١٨ يونيو ٢٠٢٦ في ٢٢:٢٣

Auto-surface the right sigma domain context-engine when implementing or verifying a data-science / AI-engineering task. Routes to hand-authored implementer guidance, verifier checks, and a logic-evaluator for the matching domain. Use when a task touches: classical ML (scikit-learn, feature engineering, cross-validation, model selection), deep learning (PyTorch / TensorFlow, training loops, architectures, distributed training), NLP (tokenization, transformers, classification, NER, semantic search, summarization), reinforcement learning (policy gradient, actor-critic, value-based, reward shaping, RLHF, environments), data analysis (EDA, A/B testing, statistical testing), data engineering (Airflow DAGs, dbt models, Spark jobs, pipelines), AI agent engineering (agent harness design, tool definitions, orchestration, evals), MLOps (experiment tracking, model registry, monitoring, production readiness), or LLM engineering (prompt engineering, RAG, fine-tuning, LLM evals). Trigger when about to write or review code i

التثبيت

التثبيت باستخدام Codex أو Claude انسخ هذا Prompt والصقه في Codex أو Claude أو مساعد آخر ليراجع صفحة Skill ويثبّتها لك.

SKILL.md
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