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Article

Evaluation-driven development with EvalHub

William Caban Babilonia +1

Learn how evaluation-driven development (EDD) turns AI optimization from an art into an engineering discipline with EvalHub.

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Article

Build an enterprise RAG system with OGX

Abdelhamid Soliman

Learn how to transform a simple chatbot into an enterprise RAG application by applying metadata filtering, hybrid search, and neural reranking using the OGX framework in Red Hat OpenShift AI.

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Article

How Kagenti ADK simplifies production AI agent management

Legare Kerrison

Learn how Kagenti ADK, an open source toolkit, handles the complexities of managing production AI agents. It aligns with the Linux Foundation's Agent2Agent (A2A) protocol and provides a set of runtime services for easier deployment and operation.

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Article

Beyond the next token: Why diffusion LLMs are changing the game

Alon Kellner +1

This article discusses the benefits of diffusion LLMs, a revolutionary approach to language models that offers a dynamic tradeoff between accuracy and performance. The article covers the architecture, evolution, and real-world statistics of this technology, including examples of open source models like LLaDA 2.X and Mercury 2.

A stylized illustration representing an artificial neural network, set against a dark purple background within a slightly rounded, darker purple square icon shape. The neural network consists of multiple layers of interconnected nodes, depicted as glossy, spherical red orbs. Lines connect these red orbs, forming a complex web. White arrow shapes extend horizontally from the left side, pointing towards the network, suggesting input or data flowing into the system.
Article

Combining KServe and llm-d for optimized generative AI inference

Ran Pollak +1

Learn how to combine KServe and llm-d to optimize generative AI inference, improve performance, and reduce infrastructure costs. This article demonstrates the integration architecture and provides practical guidance for AI platform teams.

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Article

3 lessons for building reliable ServiceNow AI integrations

Tomer Golan

Learn about critical lessons from building an MCP-powered AI agent for ServiceNow, including how to structure testing environments, best practices for implementing safeguards, and a phased approach to deploying enterprise AI integrations.

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Article

Deploying agents with Red Hat AI: The curious case of OpenClaw

Nati Fridman +2

Explore how Red Hat AI simplifies agent deployment with OpenClaw, showcasing model inference, safety guardrails, agent identity, and persistent state. Learn about vLLM, Llama Stack, and Models-as-a-Service (MaaS) options, and discover the benefits of agent identity and zero trust with Kagenti and AuthBridge.

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Article

Build more secure, optimized AI supply chains with Fromager

Lalatendu Mohanty

Learn how Fromager, an open source project, helps protect Python dependencies by rebuilding entire dependency trees from source, providing network-isolated builds, and managing dependencies as a verifiable map. Discover how Fromager ensures supply chain verifiability, ABI compatibility, and customization.

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Deploying open source AI agents on OpenShift using OpenClaw

Grace Ableidinger +1

Learn how to run OpenClaw on Red Hat OpenShift with production-grade security and observability. We cover default-deny network policies for blast radius containment, container-level sandboxing with OpenShift, Kubernetes Secrets for credential management, and end-to-end OpenTelemetry tracing with MLflow, so every decision your AI agent makes is isolated, auditable, and safe by default. Whether you're a developer exploring AI agents for the first time or a platform engineer thinking about running agentic workloads at scale, this is the infrastructure story that makes it production-ready.