Board Infinity

Advanced Deep Learning Architectures Specialization

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Board Infinity

Advanced Deep Learning Architectures Specialization

Master Deep Learning for Production GenAI.

Transformers and Diffusion Models, and Deploy Optimized Inference for Real-World Applications

Board Infinity

Instructor: Board Infinity

Included with Coursera Plus

Get in-depth knowledge of a subject
Intermediate level

Recommended experience

12 weeks to complete
at 5 hours a week
Flexible schedule
Learn at your own pace
Get in-depth knowledge of a subject
Intermediate level

Recommended experience

12 weeks to complete
at 5 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Fine-tune advanced architectures including Vision Transformers, ConvNeXt, and billion-parameter LLMs using LoRA, QLoRA.

  • Build generative AI pipelines with Transformer internals, KV Caching, Diffusion Models, and ControlNets using Hugging Face libraries

  • Optimize and deploy production inference with model quantization, vLLM serving, ONNX export, and edge deployment strategies.

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Taught in English
Recently updated!

May 2026

91%

of learners achieved a positive career outcome

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Specialization - 3 course series

What you'll learn

  • Build and fine-tune ConvNeXt and Vision Transformer models using PyTorch Lightning and the timm library

  • Apply RMSNorm, SwiGLU, and Rotary Position Embeddings (RoPE) in modern transformer architectures

  • Implement mixed precision, gradient accumulation, and DDP/FSDP for efficient multi-GPU training

  • Design, track, and benchmark CNN vs. ViT experiments using TensorBoard, W&B, and PyTorch Profiler

Skills you'll gain

Category: Deep Learning
Category: Model Training
Category: Vision Transformer (ViT)
Category: Convolutional Neural Networks
Category: Model Optimization
Category: Distributed Computing
Category: Fine-tuning
Category: PyTorch (Machine Learning Library)
Category: Model Evaluation
Category: Artificial Intelligence and Machine Learning (AI/ML)
Category: Data Preprocessing
Category: Embeddings
Category: MLOps (Machine Learning Operations)
Category: Memory Management
Category: Transfer Learning
Generative AI: Fine-Tuning LLMs and Diffusion Models

Generative AI: Fine-Tuning LLMs and Diffusion Models

Course 2, 19 hours

What you'll learn

  • Build decoder-only transformer pipelines with KV caching optimizations

  • Fine-tune 7B+ LLMs using LoRA and QLoRA on consumer GPUs

  • Configure diffusers pipelines with ControlNet for controllable images

  • Train, export, and evaluate a domain-specialized LLM adapter

Skills you'll gain

Category: Model Optimization
Category: Fine-tuning
Category: Model Evaluation
Category: Generative Model Architectures
Category: Large Language Modeling
Category: Generative AI
Category: Model Training
Category: Transfer Learning
Category: Token Optimization
Category: Hugging Face
Category: Machine Learning
Category: Data Science
Category: LLM Application
Category: Model Deployment

What you'll learn

  • Apply INT4/INT8 quantization (AWQ, GPTQ, GGUF) to compress LLMs and vision models for production

  • Deploy high-throughput inference servers using vLLM's PagedAttention and NVIDIA Triton

  • Run optimized LLMs on CPU and edge devices using ONNX Runtime and Llama.cpp

  • Build, benchmark, and containerize a production-ready inference API with Docker

Skills you'll gain

Category: Model Deployment
Category: Model Optimization
Category: Containerization
Category: API Design
Category: Scalability
Category: Model Evaluation
Category: Memory Management
Category: Cloud Deployment
Category: Fine-tuning
Category: Application Deployment
Category: Docker (Software)
Category: Large Language Modeling
Category: Performance Tuning

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Instructor

Board Infinity
Board Infinity
261 Courses418,246 learners

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