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Understanding how automation changes work — task by task, with the evidence shown and the uncertainty admitted.

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On this pageWhich technologiesHow it got hereMethod and sources
Occupations›Nurse practitioner›How we know

Nurse practitioner — how we know

The page itself gives the judgements. This one gives what they rest on: which technologies bear on the work, how the estimate moved since language models reached the public, and the method behind both.

Assessed
2026-10-07
With evidence
2/5
Verified events
5

Which technologies matter here#

Four separate signals. They are deliberately not added together — a job exposed to two technologies is not twice as exposed.

Process & self-service
Taking histories and writing notes
Physical automation
Examining patients
Cognitive automation
Ordering tests and diagnosingTreatment plans and prescribingPatient messages and education

How it got here#

The index is not a static number. This is where it would have sat at each capability checkpoint since ChatGPT — reconstructed, and labelled as such.

Reconstructed · platform inferenceEstimated today for each past checkpoint — not measured at the time. 12 → 30.
1007550250
Nurse practitioner employment will grow 41% from 2025 to 2035 on demand for healthcare and wider practice authority, the US Bureau of Labor Statistics estimatedBritish Columbia's nursing regulator lets nurses use AI for documentation only with their employer's approval and keeps them solely accountable for the recordIn a five-week pilot of an ambient AI note tool with 38 physicians and advanced practice providers, burnout fell from 69% to 43%California requires AI-generated patient messages about clinical information to carry a disclaimer, unless a licensed health care provider read and reviewed themAt Stanford, physicians, advanced practice practitioners, nurses and pharmacists used AI-drafted replies for 20% of patient messages, with no change in reply time123456789not assessed
2022 H22024 H2Now

—— this stretch contains a verified event- - - no event in this stretch — reconstruction only0 = no task exposed, 100 = every task exposed

● 5 verified events for this occupation, plotted at the date it happened — the parts of the line near a marker are anchored to something checkable.

Starts at 12 because electronic records, e-prescribing and clinical reference tools were standard before this chart begins, while every history, examination and note was done by the clinician. It climbs as ambient AI tools draft visit notes and AI drafts replies to patient messages. It stays low because examination, diagnosis and prescribing stay with the clinician, regulators keep clinicians accountable for AI-assisted notes, and practice authority is widening rather than shrinking.

12022 H212General-purpose text generation reaches the public. Before this point, exposure came from automation that was already deployed — OCR, RPA, machine vision, self-checkout, dispatch algorithms. ChatGPT research preview (2022-11-30) ↗
22023 H113A general model that passes professional exams. First-draft quality crosses the threshold where professional work starts using it. GPT-4 (2023-03-14) ↗
32023 H215Vision input, long context and tool calling. Models can be pointed at documents and connected to systems, which is what moves process work rather than writing work. GPT-4 Turbo:128k 上下文、视觉、工具调用(DevDay) (2023-11-06) ↗
42024 H117The same capability gets much cheaper and faster. Nothing new becomes possible; a lot becomes affordable at volume, which is when deployment decisions change.
52024 H219Reasoning models that work through multi-step problems, and the first models that operate a computer by looking at the screen. The second one is what reaches software-operating jobs. OpenAI o1(推理);同期 Claude 的 computer use 进入公测 (2024-09-12) ↗
62025 H122Agents begin operating real software end to end rather than producing text for a person to paste. This is also when the first public reversals appear — organisations that automated and partly undid it. Claude 3.7 Sonnet 与 Claude Code:混合推理 + 命令行编码代理 (2025-02-24) ↗
72025 H225Long context and tool use become the default rather than a feature. Capability gains continue; the visible constraint shifts from what models can do to liability, procurement and cost. GPT-5(2025-08-07);Claude Opus 4.5(2025-11-24) (2025-08-07) ↗
82026 H128Long-horizon agents land inside specific industry workflows. Adoption becomes sector-specific rather than general. GPT-5.5:「专为实际工作打造」 (2026-04-23) ↗
9Now30The current assessment — this point is the impact index published on the occupation's page, so the curve is anchored to a number the site already stands behind. Worth noting for the flat curves: in the same weeks, a research preview of a shared specification for AI agents to operate physical devices was opened to research labs and manufacturers. That is the first capability class pointed at the physical occupations whose lines here barely move. GPT-6 Astra(2026-09-03);Claude Fable 5.1 / Mythos 5.1(2026-09-01);Model Hardware Standard 研究预览(2026-08-27) (2026-09-03) ↗

A flat line is not a forecast of safety. It says which tasks automation has reached so far — the occupations that moved least here are the ones where the constraint is physical or regulatory, and both of those can change.

Method and sources#

Assessment date
2026-10-07
Basis of the task judgements
2 evidence-backed · 3 platform inference · 0 not enough evidence
Verified events
5

How we assess an occupation →

← Back to Nurse practitionerThe other layer: every task, one by one →Skills, knowledge and related jobs (O*NET) →