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Don't Build Cascaded Pipelines: Skilling Up Coding Agents for System Observability

6 min · 21 de may de 2026
Portada del episodio Don't Build Cascaded Pipelines: Skilling Up Coding Agents for System Observability

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episode The AI agent era is here, but our benchmarks are lagging behind. We are facing a critical "evaluation gap." 📊 artwork

The AI agent era is here, but our benchmarks are lagging behind. We are facing a critical "evaluation gap." 📊

The AI agent era is here, but our benchmarks are lagging behind. We are facing a critical "evaluation gap." 📊 While coding agents are advancing rapidly, deploying them in high-stakes environments (healthcare, finance) requires rigorous measurement. We need to evolve from static datasets to dynamic environments that reflect real-world messiness: org policies, flaky toolchains, and Slack context. Future benchmarks must focus on: 🔹 Environment Complexity: Realistic, dynamic operating environments 🔹 Autonomy Horizon: Measuring reliability over weeks or months, not just minutes 🔹 Output Complexity: Verifiable standards for nuanced artifacts, not just text The ultimate goal? "Trustworthy outputs"—agents that know when they are uncertain and pause to ask for help. Check out my full deep dive into the Art and Science of Benchmarking AI Agents below! 👇 All my links: https://linktr.ee/learnbydoingwithsteven [https://linktr.ee/learnbydoingwithsteven] #learnbydoingwithsteven #AI #MachineLearning #AIAgents #Benchmarking #Evaluation #TechTrends #FutureOfWork

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