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AI & LLM Engineering · yonatangross/orchestkit

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1

LLM integration patterns for function calling, streaming responses, local inference with Ollama, and fine-tuning customization.

yonatangross/orchestkit292—~2.7kAutomated safety check: PassMITyesterday
2

Performance optimization patterns covering Core Web Vitals, React render optimization, lazy loading, image optimization, backend profiling, LLM inference, and sustainability UX.

yonatangross/orchestkit292—~3.5kAutomated safety check: PassMITyesterday
3

Retrieval-Augmented Generation patterns for grounded LLM responses.

yonatangross/orchestkit292—~4.4kAutomated safety check: PassMITyesterday
4

Run isolated eval and grading calls using CC 2.1.81 --bare mode.

yonatangross/orchestkit292—~2.2kAutomated safety check: PassMITyesterday
5

Evals-first error analysis for LLM apps: clusters real Langfuse or JSONL traces into a human-confirmed failure taxonomy with counts, then recommends binary pass/fail evals for recurring named modes.

yonatangross/orchestkit292—~3.6kAutomated safety check: NotesMITyesterday
6

LLM and AI testing patterns — mock responses, evaluation with DeepEval/RAGAS, structured output validation, and agentic test patterns (generator, healer, planner).

yonatangross/orchestkit292—~2.6kAutomated safety check: PassMITyesterday
7

LangGraph 1.x (LTS) Python workflow patterns for state management, delta channels, resilience (node timeouts, error handlers, graceful drain), routing, parallel execution, supervisor-worker, tool…

yonatangross/orchestkit292—~4.2kAutomated safety check: PassMITyesterday