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[ARTICLE · art-108234] src=arxiv.org ↗ pub= topic=artificial-intelligence verified=true sentiment=· neutral

Who Delegates to AI? Evidence from 53,000 Agent Configurations

A new study introduces the Agentic Adoption Index (AAI), which measures whether workers have delegated tasks to AI by analyzing roughly 53,000 agent skill specifications from the Manus Skills Marketplace and comparing them to about 18,000 O*NET task statements. The study finds that occupations where AI delegation concentrates differ from those previously identified as most at risk, and that the AAI peaks below the top of the wage distribution and at the bachelor's level, declining at both extremes. The authors suggest that feasibility alone cannot explain the shortfall among the most educated occupations, which may reflect work that resists advance specification or professional discretion.

read1 min views1 publishedAug 24, 2026

arXiv:2608.20425v1 Announce Type: new Abstract: A growing literature measures how far occupations are exposed to AI, but these measures capture where AI could perform tasks, not whether workers have adopted it. We propose a new layer of exposure, delegated exposure, which records whether a worker has committed a task to AI by building it into a workflow. We operationalize it as the Agentic Adoption Index (AAI), which measures how closely an occupation's tasks match the agentic routines practitioners have already built and shared. We embed roughly 53,000 agent skill specifications from the Manus Skills Marketplace, compute their semantic similarity to about 18,000 O*NET task statements, and aggregate to the occupation level. Three findings follow. First, the occupations where delegation concentrates differ sharply from those pre-AI frameworks identified as most at risk. Second, the AAI tracks what AI could do more closely than what workers currently use it for. Third, the AAI peaks below the top of the wage distribution and at the bachelor's level, declining at both extremes. Technical availability explains most of this variation, but not the shortfall among the most educated occupations, so feasibility alone cannot account for who adopts. That shortfall may reflect work that resists advance specification, or professional discretion over the pace of codification. Distinguishing the two, and tracking how these measures diverge over time, will require repeated measurement.

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