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AI Evaluations in n8n Building High- Quality Outputs You Can Trust

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AI Evaluations in n8n Building High- Quality Outputs You Can Trust
Released: 09/2026
Duration: 1h 35m | .MP4 1280x720, 30 fps(r) | AAC, 48000 Hz, 2ch | 225 MB
Level: Intermediate | Genre: eLearning | Language: English
AI evaluation is becoming a critical capability as organizations move from experimenting with LLM workflows to running them in production. Builders need reliable ways to detect hallucinations, catch regressions, and hold quality steady as prompts, data sources, and model versions change. This course teaches you how to build a robust evaluation pipeline in n8n so you always know how well your AI workflows are performing. Starting with a real RAG question-answering workflow as the subject under test, you construct a golden dataset, run built-in metrics like exact match and contains, and learn what those metrics can and can't tell you. From there, dive deeper into LLM-as-a-judge evaluation: writing structured judge prompts with scoring rubrics, building faithfulness checks, and making your judge more consistent and less biased. Finish by wiring everything into a pipeline that aggregates scores, fires alerts, and logs results over time, so evaluation becomes a living part of how you ship and maintain AI workflows.​

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https://www.linkedin.com/learning/ai-evaluations-in-n8n-building-high-quality-outputs-you-can-trust

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