Large Language Models: Foundational Concepts and Real-World Use Cases
Explore the mechanics of Large Language Models and learn how they are transforming industries through clear explanations of training, fine-tuning, and prompt engineering.
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このコースについて
Large Language Models (LLMs) are the engines behind the current AI revolution, yet their inner workings often remain a mystery to those outside the field of data science. This course provides a clear, text-based roadmap to understanding how these models are built, how they learn, and how they are applied in business and creative fields today.
You will gain a comprehensive understanding of the technology that powers modern AI assistants, moving from basic definitions to the sophisticated techniques used by industry leaders. By the end of this course, you will be able to discuss AI trends intelligently and understand the frameworks required to implement these tools effectively.
What you'll learn:
- Understand the core architecture of LLMs, including attention mechanisms and transformer foundations
- Explore training methodologies such as next-word prediction, masked language modeling, and fine-tuning
- Learn the differences between zero-shot, few-shot, and multi-shot learning patterns
- Master the basics of prompt engineering and Retrieval-Augmented Generation (RAG) patterns
- Examine the ethical landscape, focusing on data privacy, bias handling, and environmental impact
- Identify current industry trends in model explainability and computational efficiency
The course begins with essential terminology and the historical evolution of natural language processing before diving into the technical building blocks and modern deployment strategies used in the field today. You will read through detailed explanations and conceptual examples that bridge the gap between theory and practice.
This course is designed for beginners, non-technical professionals, and curious learners who want a solid conceptual grounding in AI without any prior programming or math prerequisites.
Begin building your foundational knowledge of the AI landscape today.
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⚡短く要点だけ 2時間48分の実践的な内容
レビュー (6)
Amelia Taylor
US
★ 5 · 14.07.2026
This was a good introduction. The structure is logical, and it covers the basics effectively. Might be too introductory for advanced learners.