Description
LLM Customization and Fine-Tuning
Adaptation, distillation, and alignment
What’s inside
- A framework for choosing between prompting, RAG, LoRA/QLoRA, SFT, distillation, and DPO
- End-to-end LoRA and QLoRA fine-tuning on a single GPU
- Building a training-data pipeline with quality gates and lineage tracking
- Distilling smaller student models and aligning them with DPO
- Production ops: drift detection, canary prompts, rollback, and safety monitoring







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