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End-to-End Natural Language Processing
September 29 @ 8:00 am – November 30 @ 5:00 pm
Course Description
Elevate your machine learning skills with our comprehensive course, “End-to-End Natural Language Processing”. This course covers everything you need to know about text data processing using state-of-the-art AI tools and various NLP tasks. Learn how to leverage large language models, master prompt engineering and retrieval augmented generation (RAG), and create your own specialized AI models for specific tasks.
Course at a Glance
Mastering PyTorch
End-to-End Computer Vision
End-to-End Natural Language Processing
Generative Models
MLOps
Interpretability in AI
Prerequisites:
Basic Python & PyTorch programming
Basic understanding of deep learning
By the end of the course, you should be able to:
- 2 Quizzes covering NLP fundamentals, text preprocessing techniques, tokenization, and prompting
- 1 Coding Exercise with prompt engineering and RAG implementation, including development of an agentic AI pipeline to automate NLP workflows
- 1 Final Project to design and deploy a complete end-to-end NLP pipeline for a real-world application (e.g., automated FAQ answering, legal document summarization, or chatbot)
- Module 1: NLP Fundamentals and Data Processing
- Introduction to NLP applications and text data types
- Text preprocessing techniques (cleaning, tokenization, normalization)
- Zero-shot learning and prompting techniques with Large Language Models
- Module 2: Common NLP Tasks and Model Implementation
- Prompt engineering for LLM-based solutions
- Retrieval-Augmented Generation (RAG) pipeline construction
- Fine-tuning transformer models (e.g., BERT) for specific tasks
- Developing agentic AI workflows for automated NLP tasks
- Module 3: Model Evaluation and Performance Analysis
- NLP evaluation metrics (accuracy, precision, recall, F1-score, BLEU, ROUGE)
- Comparative analysis of traditional ML vs. transformer-based models
- Error analysis and bias considerations in NLP models
- Module 4: Building an End-to-End NLP Pipeline
- Pipeline architecture: preprocessing → modeling → evaluation → deployment
- Integration of NLP components into complete systems
- Deployment strategies via APIs, web applications, and cloud services
- The course starts on September 29, 2025. All coursework must be completed by November 30, 2025, in order to earn the micro-credential badge. You will continue to have access to the course materials until January 1, 2026. The approximate time to complete this course is 16 hours.
- This course has an instructional period from September 29 to October 26, 2025. During this instructional period, course materials will be released weekly, and live synchronous sessions will be held. You may complete the course materials at your own pace. Live Zoom meetings will be conducted for interactive coding sessions and answering any questions you have.
- You will receive the micro-credential badge upon successful completion of the course assessments.
- Course Materials:
- Course materials are provided within the course. No additional purchase is required.
Students
Industry Professionals/ISU Staff/Post Docs
$
500
.00