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The latest news, opinions and technical guides from ZenML.
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The Experimentation Phase Is Over: Key Findings from 1,200 Production Deployments

Analysis of 1,200 production LLM deployments reveals six key patterns separating successful teams from those stuck in demo mode: context engineering over prompt engineering, infrastructure-based guardrails, rigorous evaluation practices, and the recognition that software engineering fundamentals—not frontier models—remain the primary predictor of success.
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LLMOps in Production: Another 419 Case Studies of What Actually Works

Explore 419 new real-world LLMOps case studies from the ZenML database, now totaling 1,182 production implementations—from multi-agent systems to RAG.
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Why Pipelines Are the Right Abstraction for Real-Time AI (Agents Included)

ZenML's Pipeline Deployments transform pipelines into persistent HTTP services with warm state, instant rollbacks, and full observability—unifying real-time AI agents and classical ML models under one production-ready abstraction.
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How to Build a Multi-Agent Financial Analysis Pipeline with ZenML and SmolAgents

How to build a production-ready financial report analysis pipeline using multiple specialized AI agents with ZenML for orchestration, SmolAgents for lightweight agent implementation, and LangFuse for observability and debugging.
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CrewAI vs n8n: Key Differences and Which Platform Wins for AI Agents

In this CrewAI vs n8n, we explain the difference between the two and conclude which one is the best to build AI agents.
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We Tried and Tested 7 CrewAI Alternatives to Build Automated AI Workflows

Discover the top 7 CrewAI alternatives you can leverage to build automated AI workflows.
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CrewAI Pricing Guide: Plans and Features the Framework Offers

In this CrewAI pricing guide, we discuss the costs, features, and value CrewAI provides to help you decide if it’s the right investment for your business.
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Langflow vs LangGraph: A Detailed Comparison for Building Agentic AI Systems

This Langflow vs LangGraph article explains all the differences between these AI agentic systems.
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The Annotated Guide to the Maven Evals Course (by way of the LLMOps Database)

Lessons from the Maven Evals course are combined with 50+ real-world case studies from ZenML's LLMOps Database to show how companies like Discord, GitHub, and Coursera implement the Three Gulfs model and Analyze-Measure-Improve lifecycle to transform failing LLM systems into production-ready applications.
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