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Datadog | The Monitor blog

Introducing our open source AI-native SAST Instrument and monitor Boomi integration flows with OpenTelemetry and Datadog Not all index scans are equal: How we cut query latency by over 99% Platform engineering metrics: What to measure and what to ignore Integrate Recorded Future threat intelligence with Datadog Cloud SIEM CI/CD security: threat modeling using a MITRE-style threat matrix CI/CD security: How to secure your GitHub ecosystem Ingress NGINX is EOL: A practical guide for migrating to Kubernetes Gateway API Operating agentic AI with Amazon Bedrock AgentCore and Datadog LLM Observability: Lessons from NTT DATA Introducing the Datadog Code Security MCP Capture and analyze custom heatmaps in Session Replay Understand session replays faster with AI summaries and smart chapters Monitor ClickHouse query performance with Datadog Database Monitoring How we designed empathetic alert sounds for on-call engineers Search and act across Datadog to resolve issues faster with Bits Assistant Measure the business impact of every product change with Datadog Experiments Analyzing round trip query latency Configuring JavaScript caches for better performance Introducing Bits AI Dev Agent for Code Security Datadog achieves ISO 42001 certification for responsible AI Monitor Nutanix clusters, hosts, and VMs with Datadog Monitor Juniper Mist in Datadog A new Host Map for modern infrastructure Annotate traces to improve LLM quality with Datadog LLM Observability What’s new in Cloud SIEM: AI-powered investigations, enhanced threat intelligence, and scalable security operations Explore Kubernetes with native OpenTelemetry data Monitor Oracle Fusion Cloud Applications with Datadog Announcing the Datadog Terraform provider v4.0.0 Scaling Kubernetes workloads on custom metrics How to design cloud environments for AI-powered threat analysis
Datadog acquires Propolis
2026-01-28 · via Datadog | The Monitor blog

Generative AI enables teams to write and ship code faster than ever. But current methods for testing and quality assurance have not evolved to match the new pace and scale of deployments. Manual and deterministic testing paths quickly become obsolete when new features are released, and they fundamentally can’t test AI outputs, leaving a massive untested surface area. To keep up, teams need new testing methods that can define what goals users have, and ensure that their outcomes match. That’s why we’re thrilled to announce that Propolis is joining Datadog.

What is Propolis?

Propolis is an autonomous QA testing platform that specifically tackles goal- and output-oriented testing. Propolis’s agents explore your application and automatically identify real user journeys and goals. Using swarms of synthetic users to test and verify successful outcomes across complex, nondeterministic, or even agentic user journeys and dynamic environments, Propolis can catch errors that traditional tools miss. It then autonomously self-heals these tests and keeps coverage up to date via subsequent runs and continuous test generation, removing the need for human intervention.

Datadog + Propolis

By combining Propolis with Datadog’s deep production context – including traces, logs, and Real User Monitoring (RUM) data – we are creating the first solution to truly automate testing end-to-end. By integrating Propolis and Datadog, agents can infer user intent from how applications are actually used, not just how they were designed. Quality shifts from a slow pre-release gate to a continuous signal embedded in CI/CD and runtime.

Stay tuned for future updates on our progress as we work to bring Propolis’s features into Datadog.