This course explores the foundations and evolution of modern transformer architectures, taking you from early sequence models to advanced multimodal systems that power today’s AI breakthroughs. Combining strong conceptual depth with practical demonstrations, this course provides a structured journey through attention mechanisms, transformer design, efficiency innovations, and large-scale training strategies.

Transformer Architectures and Multimodal Models

Transformer Architectures and Multimodal Models
This course is part of Advanced Deep Learning Architectures Specialization

Instructor: Edureka
Access provided by Georgetown University
Gain insight into a topic and learn the fundamentals.
Intermediate level
Recommended experience
1 week to complete
at 10 hours a week
Flexible schedule
Learn at your own pace
What you'll learn
Understand attention mechanisms and complete transformer architectures.
Implement multi-head attention and positional encoding techniques.
Analyze and optimize efficient transformer components like Flash Attention and MoE.
Build multimodal and similarity-based models using transformer foundations.
Skills you'll gain
- Natural Language Processing
- Distributed Computing
- Transfer Learning
- Recurrent Neural Networks (RNNs)
- Embeddings
- Artificial Neural Networks
- Artificial Intelligence and Machine Learning (AI/ML)
- Artificial Intelligence
- Large Language Modeling
- Computer Vision
- Scalability
- Deep Learning
- Performance Tuning
- LLM Application
Tools you'll learn
Details to know

Shareable certificate
Add to your LinkedIn profile
Assessments
13 assignments
Taught in English
Recently updated!
March 2026
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This course is part of the Advanced Deep Learning Architectures Specialization
When you enroll in this course, you'll also be enrolled in this Specialization.
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