This course introduces the foundational concepts and advanced techniques in Generative AI, covering key topics such as model architectures, data preparation, prompt engineering, and deployment strategies. Learners will gain practical experience with cutting-edge tools and methodologies to effectively design, fine-tune, and deploy generative AI solutions.

Getting Started with Generative AI

Getting Started with Generative AI
This course is part of Generative AI for Software Engineers & Developers Specialization

Instructor: Edureka
Access provided by SR University
1,900 already enrolled
Recommended experience
What you'll learn
Define generative AI principles and apply data preparation, vectorization, and model-building techniques.
Analyze and compare models like GANs, VAEs, transformers, and LLMs for practical applications.
Design effective prompts using few-shot, zero-shot, and chain-of-thought techniques for AI models.
Optimize and deploy generative AI models using fine-tuning, PEFT, and LLMOps strategies.
Skills you'll gain
- Embeddings
- Data Processing
- Deep Learning
- Open Source Technology
- AI Personalization
- Generative Model Architectures
- LLM Application
- Fine-tuning
- Machine Learning
- Model Optimization
- Large Language Modeling
- Data Visualization
- Artificial Intelligence and Machine Learning (AI/ML)
- Responsible AI
- Data Cleansing
- Data Preprocessing
Details to know

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