This course explores building novel architectures tailored to unique challenges. You'll gain hands-on experience in building custom multimodal models that integrate visual and textual data, and learn to implement reinforcement learning for dynamic response refinement. Through practical case studies, you'll learn advanced fine-tuning techniques, such as mixed precision training and gradient accumulation, optimizing open-source models like BERT and GPT-2. Transitioning from theory to practice, the course also covers the complexities of deploying LLMs to the cloud, utilizing techniques like quantization and knowledge distillation for efficient, cost-effective models. By the end of this course, you'll be equipped with the skills to evaluate LLM tasks and deploy high-performing models.

Quick Start Guide to Large Language Models (LLMs): Unit 3

Quick Start Guide to Large Language Models (LLMs): Unit 3
This course is part of Quick Start Guide to Large Language Models (LLMs) Specialization


Instructors: Pearson
Access provided by Masterflex LLC, Part of Avantor
Gain insight into a topic and learn the fundamentals.
Intermediate level
Recommended experience
8 hours to complete
Flexible schedule
Learn at your own pace
What you'll learn
Develop custom multimodal models and implement reinforcement learning for dynamic LLM refinement.
Master advanced fine-tuning techniques, optimizing open-source models for specific tasks.
Deploy LLMs to the cloud using quantization, pruning, and knowledge distillation for efficient performance.
Evaluate LLM tasks across various categories, preparing models for real-world applications.
Skills you'll gain
Tools you'll learn
Details to know

Shareable certificate
Add to your LinkedIn profile
Assessments
4 assignments
Taught in English
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Build your subject-matter expertise
This course is part of the Quick Start Guide to Large Language Models (LLMs) Specialization
When you enroll in this course, you'll also be enrolled in this Specialization.
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