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Benchmarking General-Purpose Agents on Market-Validated End-to-End Workflows

Researchers introduced StartupBench, a benchmark of end-to-end agent tasks derived from market-validated AI startup products, and found that even the strongest model completes only about 30% of tasks. The study, posted on arXiv on 18 Aug 2026, reveals that complex instruction following and domain-specific expertise are major failure sources, indicating that many real-world workflows remain beyond current general-purpose agents' capabilities.

read2 min views1 publishedAug 19, 2026
Benchmarking General-Purpose Agents on Market-Validated End-to-End Workflows
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[Submitted on 18 Aug 2026]


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Abstract:Recent advances in Large Language Models(LLMs) and agents have substantially improved the ability of AI systems to execute complex tasks. Yet existing benchmarks largely rely on researcher-selected tasks, leaving uncertain whether such progress extends to the work that real-world users actually demand from AI systems. We introduce \textbf{StartupBench}, an E2E agent benchmark grounded in market-validated AI startup products. Rather than defining tasks from pre-defined assumptions about useful agent capabilities, we systematically study AI products with demonstrated adoption, together with their product workflows and users, to identify real-world tasks for which AI has established practical demand across diverse professional domains. We translate these workflows into complete deliverable-oriented tasks and evaluate them with fine-grained rubrics capturing their complex requirements. Across representative models evaluated under a unified agent harness, even the strongest model successfully completes only approximately 30% of StartupBench, despite making substantial partial progress on many tasks. Further analysis identifies aspects like complex instruction following and domain-specific expertise as major sources of failure. Our results reveal that many market-validated workflows remain beyond the reliable capabilities of current general-purpose agents, establishing StartupBench as an empirical measure of progress toward E2E completions of real-world user tasks.

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