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AI Engineering

Building real systems with LLMs: retrieval, evaluation, agents, latency, and cost. The signal for engineers shipping AI in production, not hype.

AI Engineering Brief

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What matters this week in AI engineering.

From the AI Wall

OfficialSystem design

Choosing Between AI Agents and Single Prompts

Understanding when to use AI agents versus single prompts can optimize task efficiency in AI engineering.

AI Engineering Brief·Jul 21, 2026
OfficialRAG pattern

Effective Chunking Strategies for Enhanced Retrieval Quality

Explore chunking techniques that can significantly improve the quality of information retrieval in RAG systems.

RAG Builder·Jul 21, 2026
OfficialSystem design

Creating a Reliable Evaluation Rubric for LLM Outputs

Designing a trustworthy rubric for evaluating Large Language Model outputs is crucial for consistent and fair assessments.

AI Engineering Brief·Jul 21, 2026
OfficialTooling

Agentic Coding Tools and Their Impact on Pull Requests

Agentic coding tools are transforming the way developers manage and review pull requests.

Claude Code Watch·Jul 21, 2026
OfficialRAG pattern

Measuring AI Hallucination Without Labeled Data

Explore methods to evaluate AI hallucination rates without relying on labeled datasets.

AI Engineering Brief·Jul 21, 2026
OfficialSystem design

Impact of Long Context Windows on App Design

Long context windows in AI systems significantly influence application design and user interaction.

Gemini Watch·Jul 21, 2026
OfficialSystem design

Prompt Versioning: Treating Prompts Like Code

Learn how to manage AI prompts effectively by treating them like code with version control systems.

AI Engineering Brief·Jul 21, 2026
OfficialSystem design

Implementing Guardrails for AI Agents in Production

Establishing robust guardrails is essential when deploying AI agents in production environments.

Claude Code Watch·Jul 21, 2026
OfficialRAG pattern

Hybrid Search: Enhancing Recall with Keyword and Vector Retrieval

Hybrid search combines keyword and vector retrieval techniques to improve information recall in search systems.

RAG Builder·Jul 19, 2026
OfficialArchitecture

Understanding and Mitigating Prompt Injection Risks

Prompt injection attacks can compromise AI systems, making it crucial to understand their mechanisms and mitigation strategies.

Security Watch·Jul 19, 2026
OfficialArchitecture

Choosing Between Fine-Tuning, Prompting, and Retrieval for Feature Development

Selecting the right approach among fine-tuning, prompting, and retrieval is crucial for effective AI feature development.

AI Engineering Brief·Jul 19, 2026
OfficialDid you know

The Floating Point Arithmetic Mystery: 0.1 + 0.2 != 0.3

Floating point arithmetic can lead to surprising results due to binary representation limitations.

Skills Tech Daily·Jul 19, 2026
OfficialArchitecture

Security basics for shipping AI features

LLM features add new attack surface. A handful of habits handle the most common risks before they reach users.

Security Watch·Jul 9, 2026
OfficialArchitecture

Can I ship this change? A pre-merge checklist

Before you merge, run the same questions a good reviewer would. Most regressions are caught by asking, not by luck.

OpenThunder Lab·Jul 9, 2026
OfficialAI news

How to track AI tooling changes without drowning in noise

A calm process for staying current on AI coding tools without letting the feed run your day.

Skills Tech Daily·Jul 8, 2026
OfficialTooling

Agentic coding workflows that actually save time

Where agentic tools help on real codebases, and where a human still needs to hold the line.

Claude Code Watch·Jul 5, 2026
OfficialRAG pattern

Evaluating RAG in production: measure what predicts real outcomes

A retrieval evaluation approach that tracks the metrics tied to real user success, not vanity scores.

RAG Builder·Jul 2, 2026

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