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Master Neural Networks, Transformers & Production AI
Want to understand Deep Learning without leaving your .NET ecosystem?
Deep Learning with .NET 10 for Developers is a practical, developer-focused ebook designed to take you from the fundamentals of neural networks to modern AI application architecture using C#, .NET 10, ASP.NET Core 10, ML.NET, ONNX, and ONNX Runtime.
This is not just a collection of theoretical definitions. The ebook connects deep-learning concepts with real-world software engineering, helping you understand how models work, how they are evaluated, how pretrained models are integrated, and how AI systems are designed for production.
AI, Machine Learning & Deep Learning
Neural networks and artificial neurons
Activation functions
Forward propagation
Loss functions
Backpropagation
Gradient descent
Optimizers
Learning rates
Regularization
Overfitting and generalization
Training and evaluation
Image tensors
CNN architecture
Convolution and filters
Padding and stride
Pooling
Feature extraction
Transfer learning
Fine-tuning
Pretrained vision models
Sequence modeling
RNN architecture
LSTM
GRU
Sequence-to-sequence models
Encoder-decoder architecture
Attention mechanisms
Transformer architecture
Tokenization
Embeddings
Positional encoding
Multi-head attention
Feed-forward networks
Residual connections
Layer normalization
Pretrained models
Foundation models
C# implementations and examples
ML.NET
ONNX
ONNX Runtime
Model inference
Model contracts
Tensor shapes
Preprocessing and postprocessing
Model versioning
Model optimization
Quantization
Batching
Caching
Production inference APIs
ASP.NET Core AI architecture
The ebook also connects Deep Learning with the technologies that have become central to modern AI engineering:
Embeddings
Semantic search
Vector databases
Retrieval-Augmented Generation (RAG)
Tool calling
AI agents
MCP
Generative AI
Enterprise AI architecture
The entire learning journey is designed around the Microsoft/.NET ecosystem.
You’ll work conceptually with:
C# 14 | .NET 10 | ASP.NET Core 10 | ML.NET | ONNX | ONNX Runtime
The focus is on understanding AI while applying the software-engineering principles you already know.
No Python is required for the learning approach presented in this ebook.
Instead of learning isolated AI concepts, you’ll understand how the pieces connect:
Neural Networks → Deep Learning → CNN/RNN → Attention → Transformers → Foundation Models → Embeddings → RAG → AI Agents → Production AI
You’ll also learn how to think about AI systems from a production perspective:
Model + Data + Application + Security + Evaluation + Observability + Infrastructure
This ebook is ideal for:
.NET Developers
C# Developers
ASP.NET Core Developers
Full Stack Developers
Software Engineers
AI Engineers
Machine Learning Engineers
Solution Architects
Technical Leads
Developers transitioning into AI
Developers preparing for AI engineering interviews
You do not need to be an advanced mathematician or machine-learning researcher. The concepts are introduced progressively and connected to practical software-engineering scenarios.
This ebook focuses on the intersection of:
Deep Learning + .NET + Software Engineering + Production AI
You’ll learn not only how models work, but also how to think about:
model selection
inference architecture
performance
scalability
security
evaluation
observability
governance
real-world AI application design
By the end, you should have a much clearer understanding of how modern AI systems are built and where your existing .NET skills fit into the AI ecosystem.
AI Fundamentals
↓
Neural Networks
↓
Deep Learning
↓
CNN / RNN / LSTM / GRU
↓
Attention
↓
Transformers
↓
Pretrained Models
↓
Embeddings
↓
ONNX & Model Inference
↓
Generative AI
↓
RAG
↓
AI Agents
↓
Enterprise AI Architecture
If you're a .NET developer who wants to move beyond simply consuming AI APIs and learn how modern AI systems actually work and are engineered, this ebook gives you a structured path from deep-learning fundamentals to production AI architecture.
Learn the fundamentals. Understand the models. Build with .NET. Think like an AI engineer.
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