Open-Source LLMs: Llama & Mistral Deep Dive
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πAbout This Course
Open-source LLMs like Llama and Mistral now power a huge share of real-world AI applications β but genuinely understanding how they work, how they differ, and how to fine-tune and deploy them takes more than reading a blog post. This course is built as a rigorous, comprehensive practice-test series designed to test and reinforce your knowledge across every layer of open-source LLM technology, from first principles to production deployment.You'll work through six full practice tests, each covering a distinct area:Open-Source LLM Fundamentals & Core Concepts β licensing, tokenization, context windows, alignment (RLHF/DPO), benchmarks, and inference-time settingsModel Architecture & Training β self-attention, positional encoding (RoPE), mixture of experts, KV cache, vocabulary, and training mechanicsLlama Family Deep Dive β Llama's architecture, licensing, fine-tuning ecosystem, and practical deployment considerationsMistral Family Deep Dive β Mistral's sliding window attention, Mixtral's MoE design, and how it compares to LlamaDeployment & Inference β VRAM planning, quantization (GPTQ, AWQ, GGUF), vLLM, llama.cpp, Ollama, scaling, and cost managementFine-Tuning, Evaluation & Production Best Practices β LoRA, QLoRA, dataset preparation, evaluation methodology, and MLOps for LLMsEach 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 open-source LLMs work end to end.Whether you're choosing between Llama and Mistral for a real project, fine-tuning a model on your own data, deploying one in production, or preparing for a technical interview touching on AI infrastructure, this course will help you validate your understanding and identify gaps before they matter.
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