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Fine-tuning a large language model is one of the most valuable skills in AI engineering today β but doing it well takes more than following a tutorial. It requires knowing when to fine-tune at all, how to prepare a genuinely good dataset, which technique actually fits your hardware and goal, and how to evaluate and deploy the result responsibly. This course is built as a rigorous, comprehensive practice-test series designed to test and reinforce your knowledge across the entire fine-tuning lifecycle, from first decision to production deployment.You'll work through six full practice tests, each covering a distinct area:Fine-Tuning Fundamentals & Core Concepts β when to fine-tune vs. RAG or prompting, transfer learning, domain adaptation, and base model selectionData Preparation & Dataset Engineering β dataset formats, sourcing strategies, cleaning, PII removal, and validationParameter-Efficient Fine-Tuning Techniques β LoRA, QLoRA, prefix tuning, adapter layers, and hyperparameter tuningFull Fine-Tuning, RLHF & Alignment Techniques β reward models, preference data, DPO, and constitutional AIFine-Tuning Infrastructure & Training Operations β hardware planning, DeepSpeed, monitoring, and experiment trackingEvaluation, Deployment & Production Best Practices β evaluation methodology, A/B testing, canary rollouts, and ongoing monitoringEach question includes a detailed explanation connecting the concept to related ideas covered elsewhere in the course, so you're not just memorizing facts β you're building a genuinely connected mental model of how fine-tuning actually works end to end.
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