Edureka

LLM Engineering: Prompting, Fine-Tuning, Optimization & RAG Specialization

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Edureka

LLM Engineering: Prompting, Fine-Tuning, Optimization & RAG Specialization

Learn LLM Engineering with Prompting to RAG. Master prompts, fine-tuning, optimization, and RAG to build reliable, scalable LLM apps.

Edureka

Instructor: Edureka

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Get in-depth knowledge of a subject
Intermediate level

Recommended experience

8 weeks to complete
at 6 hours a week
Flexible schedule
Learn at your own pace
Get in-depth knowledge of a subject
Intermediate level

Recommended experience

8 weeks to complete
at 6 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Design high-performing prompts using reusable patterns and measurable evaluation.

  • Fine-tune LLMs with PEFT/LoRA and validate results with task-appropriate metrics.

  • Optimize models for cost and latency using compression and deployment best practices.

  • Build and evaluate RAG pipelines with hybrid retrieval, re-ranking, grounding, and monitoring.

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Taught in English
Recently updated!

January 2026

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Specialization - 3 course series

Prompt Engineering for LLMs

Prompt Engineering for LLMs

Course 1 10 hours

What you'll learn

  • Create high-quality prompts that improve reasoning, clarity, and reliability in LLM outputs

  • Develop reusable prompt pipelines with systematic evaluation and optimization

  • Manage long context and conversational memory for multi-turn LLM interactions

  • Apply ethical, secure, and responsible prompt engineering practices in real-world applications

Skills you'll gain

Category: Safety and Security
Category: Responsible AI
Category: Application Development
Category: LLM Application
Category: OpenAI
Category: Scalability
Category: Context Management
Category: Prompt Engineering Tools
Category: CI/CD
Category: Prompt Engineering
Category: Multimodal Prompts
Category: LangChain
Category: Generative AI
Category: Python Programming
Category: Large Language Modeling
Category: Generative AI Agents
Category: Pandas (Python Package)
Category: Natural Language Processing
Category: AI Personalization
Category: Prompt Patterns

What you'll learn

  • Apply transfer learning and parameter-efficient fine-tuning techniques (LoRA, adapters) to adapt pretrained LLMs for domain-specific tasks

  • Build end-to-end fine-tuning pipelines using Hugging Face Trainer APIs, including data preparation, hyperparameter tuning, and evaluation

  • Design and optimize LLM context using relevance selection, compression techniques, and scalable context engineering patterns

  • Optimize, deploy, monitor, and maintain fine-tuned LLMs using model compression, cloud inference, and continuous evaluation workflows

Skills you'll gain

Category: Prompt Engineering
Category: Model Evaluation
Category: Context Management
Category: LLM Application
Category: Large Language Modeling
Category: Transfer Learning
Category: Hugging Face
RAG Systems in Practice

RAG Systems in Practice

Course 3 14 hours

What you'll learn

  • How to build and optimize Retrieval-Augmented Generation (RAG) systems using LangChain and FAISS.

  • Techniques for enhancing retrieval accuracy through hybrid search, re-ranking, and grounding methods.

  • How to deploy RAG systems into production environments and integrate them with APIs and platforms like Streamlit.

  • Best practices for monitoring, evaluating, and scaling RAG systems for optimal performance.

Skills you'll gain

Category: Embeddings
Category: Prompt Engineering
Category: LangGraph
Category: AI Workflows
Category: Generative AI
Category: Vector Databases
Category: Model Evaluation
Category: Scalability
Category: Data Preprocessing
Category: Performance Tuning
Category: Model Deployment
Category: LangChain
Category: Retrieval-Augmented Generation
Category: Large Language Modeling

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Instructor

Edureka
Edureka
134 Courses 129,470 learners

Offered by

Edureka

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