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Closing the Evaluation Gap in Agentic AI

Announcing a $3M commitment to launch Open Benchmarks Grants

February 11, 2026
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Why Frontier Agents Fail Real Engineering Work: Two Terminal-Bench 3.0 Task Deep Dives
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Why Frontier Agents Fail Real Engineering Work: Two Terminal-Bench 3.0 Task Deep Dives

Terminal-Bench 3.0 (formerly Frontier-Bench) recently launched, built to track what AI agents can and can’t do across real computer work. Terminal-Bench 2.1 has been saturating, with top agents reaching 84%; on Terminal-Bench 3.0, the best model, Claude Opus 5, achieves just 43.5%. Terminal-Bench 3.0 raises the bar with 74 authentic, verifiable tasks across 7 domains, designed to expose meaningful gaps…

Aug 20, 2026
Learn more about Why Frontier Agents Fail Real Engineering Work: Two Terminal-Bench 3.0 Task Deep Dives
Claude Opus 5: Performance and Error Analysis on Frontier Coding Tasks
Claude Opus 5: Performance and Error Analysis on Frontier Coding Tasks

Anthropic’s Claude Opus 5 recently debuted as the second model overall on the current Senior SWE-bench leaderboard, behind Fable 5. It also achieves the highest score of any evaluated model on the benchmark’s Bug & Performance Investigation category, reinforcing the rapid progress frontier coding models continue to make on increasingly realistic software engineering tasks. Just as notable, Opus 5 reaches…

Jul 27, 2026
Learn more about Claude Opus 5: Performance and Error Analysis on Frontier Coding Tasks
Inside Frontier-Bench: two Snorkel-built tasks that frontier agents still can’t crack
Inside Frontier-Bench: two Snorkel-built tasks that frontier agents still can’t crack

Frontier-Bench launched this week – the successor to Terminal-Bench, built to track what AI agents can and can’t do across real computer work. Terminal-Bench 2.1 has been saturating, with top agents clearing 75-84%; on Frontier-Bench’s launch set of 74 tasks across 7 domains, the best mode Opus 5 achieving 43.3%. Snorkel AI contributed as a task author and data partner,…

Jul 23, 2026
Learn more about Inside Frontier-Bench: two Snorkel-built tasks that frontier agents still can’t crack
Enterprise environments and training AI agents for real-world workflows
Enterprise environments and training AI agents for real-world workflows

Most agent benchmarks still evaluate a thin slice of the job. The agent receives a task, produces an answer, gets scored, and the episode ends. Enterprise workflows work differently. An underwriting agent may need to read policy documents, inspect customer records, call internal tools, ask a simulated user for missing information, update state, and follow approval rules. A correct final…

Learn more about Enterprise environments and training AI agents for real-world workflows
Milestone-Based Evaluation and Training for Long-Horizon AI Agents
Milestone-Based Evaluation and Training for Long-Horizon AI Agents

Long-horizon agents operate across many dependent states and transitions, often spanning multiple tools, environments, and periods of external feedback. The difficulty comes from preserving coherent progress as earlier decisions constrain later actions. A single workflow may involve researching evidence, changing files or records, waiting for external responses, revising plans, validating intermediate results, and returning to earlier systems with new information….

Jul 09, 2026
Learn more about Milestone-Based Evaluation and Training for Long-Horizon AI Agents
Agents’ Last Exam: AI Benchmarking for Real Work
Agents’ Last Exam: AI Benchmarking for Real Work

At our latest Snorkel AI Reading Group, Yiyou Sun and David (Xinyang) Han (UC Berkeley, Center for Responsible and Decentralized Intelligence) presented Agents’ Last Exam (ALE) — a benchmark designed to evaluate AI agents on long-horizon, economically valuable, real-world tasks with verifiable outcomes. ALE is a collaboration between Berkeley RDI, Snorkel AI, and 300+ expert contributors across 55 professional subfields. ALE asks a deceptively simple question: can…

Jun 29, 2026
Learn more about Agents’ Last Exam: AI Benchmarking for Real Work
Agentic AI Evaluation: Closing the Gap with Better Benchmarks and Data
Agentic AI Evaluation: Closing the Gap with Better Benchmarks and Data

Alex Ratner, co-founder and CEO of Snorkel AI, spoke at @Scale: Systems & Reliability about one of the most underappreciated problems in AI deployment: our ability to measure agents has been outpaced — arguably for the first time in the history of the field — by our ability to build them. The talk digs into what it actually takes to…

Jun 22, 2026
Learn more about Agentic AI Evaluation: Closing the Gap with Better Benchmarks and Data
Benchtalks #3: We taught AI everything except how to learn
Benchtalks #3: We taught AI everything except how to learn

For our third Benchtalks, the series dedicated to the researchers building the measurement toolkits that frontier labs hill-climb on, Snorkel AI co-founder Vincent Sunn Chen sat down with Parth Asawa, a PhD student at UC Berkeley advised by Matei Zaharia and Joey Gonzalez. Parth leads research on continual learning and is the creator of Continual Learning Bench, developed in collaboration…

Jun 20, 2026
Learn more about Benchtalks #3: We taught AI everything except how to learn
Continual learning and evaluating how AI agents learn across sequences of tasks
Continual learning and evaluating how AI agents learn across sequences of tasks

Most agent benchmarks evaluate each task as an independent episode. The agent receives a task, produces an answer, gets scored, and moves on. The next task starts as if the previous one never happened. That setup misses a core requirement for deployed agents. A coding agent, research assistant, data analyst, or workplace assistant should improve as it works across repeated…

Jun 18, 2026
Learn more about Continual learning and evaluating how AI agents learn across sequences of tasks
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