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Applications

My AI Agents Memory: Solving Bloat & Slowness

Hey everyone, Alex here, back on agntai.net. It’s March 23rd, 2026, and I’ve been wrestling with a particular problem lately that I think many of you building AI agents are probably facing: how do you keep your agent’s long-term memory from becoming a bloated, slow, and ultimately useless mess?

We’ve all been there. You start

Machine Learning

Activepieces vs Windmill: Which One for Side Projects

Activepieces vs Windmill: Which One for Side Projects

Activepieces is gaining traction with around 8,400 users across its platforms, while Windmill has amassed a user base of about 10,000. Numbers are interesting, but they only represent the tip of the iceberg when choosing tools for your side projects. I’ve used both and have my thoughts,

Machine Learning

How to Set Up Ci/Cd with Milvus (Step by Step)

How to Set Up CI/CD with Milvus: A Step-by-Step Guide

Setting up CI/CD with Milvus can seem daunting, but it doesn’t have to be. In this tutorial, we’re building a system that streamlines the deployment of Milvus, a vector database that currently boasts 43,455 stars, 3,912 forks, and has 1,085 open issues on GitHub, which

Operations

Production ML Done Right: Lessons from the Trenches

Production ML: The Good, The Bad, and The Utterly Annoying
Ever spent six months chiseling away at a masterpiece of machine learning, only to see it crumble when it’s time to go live? Welcome to the club. It’s like pulling off the glittery ribbon, but the present explodes. My first stab at getting a chatbot

Applications

My Take: Mastering State for Complex AI Agents

Alright, folks, Alex Petrov here, fresh from wrestling with a particularly stubborn LLM-as-a-brain for a new agent project. And that, my friends, brings us to today’s topic. We’re not just talking about agents; we’re diving deep into something I’ve seen trip up even experienced teams: the art and science of state management in complex AI

Machine Learning

Agent Debugging: A Developer’s Honest Guide

Agent Debugging: A Developer’s Honest Guide
I’ve seen 3 production agent deployments fail this month. All 3 made the same 5 mistakes. If you’re working with AI agents, the debugging process can feel like navigating a minefield while blindfolded. Yet, it doesn’t have to be that way. This agent debugging guide is aimed to help

Operations

Agent Architecture: Stop Making These Mistakes

Why Are We Still Doing This?
Let me tell you about the time I almost smashed my laptop against the wall. Picture this: It’s a Friday night in 2025, and I’m debugging an agent system that was built by someone who, clearly, loved spaghetti more than clean architecture. Every single function was like an octopus—tentacles

Applications

My AI Agents Struggle: Finding Real-World Reliability

Hey everyone, Alex here from agntai.net. It’s Friday, March 21st, 2026, and I’ve been wrestling with a particular problem in AI agent development lately that I think many of you might be encountering too. We’ve all seen the incredible demos of agents that can browse the web, write code, and even manage complex projects. But

Machine Learning

Weaviate Pricing in 2026: The Costs Nobody Mentions

After testing Weaviate for 14 months at enterprise scale: the advertised prices are just the starting point of your bill, buckle up.

I’ve been running Weaviate as part of a production vector search infrastructure since early 2025, dealing with millions of entries and complex query demands. During that time, I’ve seen firsthand where the advertised

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