Master the complete fine-tuning pipeline—from transformer internals to production deployment—using memory-efficient techniques that run on consumer hardware. This course transforms you from someone who uses large language models into someone who customizes them. You'll learn to fine-tune 7-billion parameter models on a laptop GPU using QLoRA, which reduces memory requirements from 56GB to just 4GB through intelligent quantization and low-rank adaptation. What sets this course apart is its rigorous, scientific approach. You'll apply Popperian falsification methodology throughout: instead of asking "does my model work?", you'll systematically try to break it. This skeptical mindset—testing tokenization edge cases, running rank ablation studies, and validating corpus quality through six falsification categories—builds the critical thinking skills that separate production-ready engineers from those who ship fragile systems. By course end, you'll confidently: calculate VRAM requirements and select appropriate hardware; trace inference through the six-step transformer pipeline; configure LoRA rank to match task complexity; build quality training corpora using AST extraction; and publish datasets to HuggingFace with proper splits and documentation. Built entirely on a sovereign AI stack, everything runs locally with no external dependencies—true ML independence.
CERTIFICATEKatılım Sertifikası
FORMAT100% Online
DURATIONSelf-paced
What you'll learn
Fine-tuning
Hugging Face
Model Training
Large Language Modeling
Transfer Learning
Rust (Programming Language)
Data Validation
Model Optimization
Model Deployment
Generative AI
Verification And Validation
System Requirements
Details
ProviderPragmatic AI Labs
TypeCourse
CategorySoftware & Programming
LanguageEnglish
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Melis Gülsar
Hızlı desteği ve üst düzey hizmeti ile Campus Online ve Sosyal Medya Sertifika Programı hizmeti sağlayan Adnan Menderes Üniversitesine sonsuz teşekkürlerimi sunuyorum.