SOC 29-9091Canada NOC 31204Orchestrator opportunity

Athletic trainers: AI exposure and career outlook

Athletic trainers (SOC 29-9091) sit at the 42nd percentile for measured AI exposure among the 342 occupations tracked here, measured from a composite of Microsoft Research and Anthropic Economic Index telemetry. An estimated 21% of tasks are already automated and 45% are being reshaped rather than replaced — both modelled figures, not direct measurements. Of the Claude usage observed in this occupation, 43% follows an automation pattern and 57% an augmentation pattern, which places it in the Orchestrator opportunity group: AI reaches deep into this work and amplifies it. The leverage goes to whoever directs it, and that can be you. In Canada the role maps to NOC 31204 (Kinesiologists and other professional occupations in therapy and assessment), and ESDC's COPS 2024–2033 outlook for that unit group is balance.

Figures last updated 2026-06. Every number on this page is labelled measured or modelled; where a source has no coverage for this occupation, it says so rather than showing a zero.

Key facts

SOC code
29-9091
Canada NOC 2021
31204
TEER level
Not available
COPS outlook
Balance

What the measurements actually say

Three independent studies measure AI exposure for this occupation directly. The two percentages below them are ours, modelled from those measurements.

Measured and modelled AI exposure figures for Athletic trainers
MetricValueProvenance
AI applicability11%Measured — Microsoft Research, from 200,000 Copilot conversations classified against O*NET work activities.
Observed AI usage5%Measured — Anthropic Economic Index, share of tasks observed being performed with Claude (CC-BY 4.0).
Academic AI exposure43rd percentileMeasured — Felten-Raj-Seamans AIOE index across 774 occupations; the index underlying Statistics Canada's Canadian estimates.
Automation-pattern usage43%Measured — the share of observed Claude usage in this occupation where the task is handed over rather than iterated on (Anthropic Economic Index).
Augmentation-pattern usage57%Measured — the complement of the row above; the two sum to 100% by construction. This is the pattern where the person stays in the loop.
Estimated task automation (modelled)21%Modelled from this occupation's measured telemetry composite, mapped through anchors calibrated to Anthropic's published aggregate findings. Our estimate, not per-occupation telemetry.
Estimated task reshaping (modelled)45%Share of tasks where AI acts as co-pilot rather than replacement. Modelled from the measured telemetry composite, calibrated to BCG's published aggregate reshaping rates. Our estimate.
Exposure band: Reshaping

AI is transforming how this work is done. Professionals who adapt their workflows will thrive; those who don't face increasing competition.

In Canada: NOC 31204

Athletic trainers map to NOC 31204 — Kinesiologists and other professional occupations in therapy and assessment. ESDC's COPS 2024–2033 projection for this unit group is Balance.

Mapped via Statistics Canada's official SOC 2018 → NOC 2016 → NOC 2021 correspondence tables (closest match of several correspondence candidates). TEER is the second digit of the NOC code, so it is only as certain as the code is. Several correspondence candidates were available here and we took the closest by title, so we do not report a TEER level for it.

What this job actually involves

These are the O*NET task statements for Athletic trainers— the work itself, as reported by people doing the job — grouped by the work activity each task belongs to. Showing 12 of 23, core tasks first.

The exposure figures above are for the occupation as a whole. We do not have a per-task measurement: no published dataset tells us which of these specific tasks AI is doing. Read this as what the job is made of, not as a ranking of what is at risk.

3 of these 12statements do carry one measured signal: Anthropic publishes, per O*NET task, how much of the observed Claude usage on it looked like automation rather than iteration. Those are marked below. It still says how people use AI on that task, not how much of it AI can do — and the unmarked statements carry nothing rather than inheriting the occupation's figure.

Microsoft's applicability score was itself produced by classifying Copilot conversations against the O*NET work-activity catalogue — the same catalogue these groups come from. The published file gives one number per occupation, not one per activity, so we can tell you that 11% of this occupation's work activities are covered by observed AI usage, but not which ones.

Judging the Qualities of Objects, Services, or People · 2 tasks

  • Assess and report the progress of recovering athletes to coaches or physicians.

    Core task · Importance 4.7/5 (O*NET)

  • Evaluate athletes' readiness to play and provide participation clearances when necessary and warranted.

    Core task · Importance 4.6/5 (O*NET) · 92% of observed AI use on this task is automation-pattern

Thinking Creatively · 2 tasks

  • Collaborate with physicians to develop and implement comprehensive rehabilitation programs for athletic injuries.

    Core task · Importance 4.2/5 (O*NET)

  • Plan or implement comprehensive athletic injury or illness prevention programs.

    Core task · Importance 3.8/5 (O*NET)

Performing General Physical Activities · 2 tasks

  • Clean and sanitize athletic training rooms.

    Core task · Importance 4.4/5 (O*NET)

  • Travel with athletic teams to be available at sporting events.

    Core task · Importance 4.1/5 (O*NET)

Inspecting Equipment, Structures, or Materials · 1 task

  • Inspect playing fields to locate any items that could injure players.

    Core task · Importance 3.8/5 (O*NET)

Analyzing Data or Information · 1 task

  • Conduct an initial assessment of an athlete's injury or illness to provide emergency or continued care and to determine whether they should be referred to physicians for definitive diagnosis and treatment.

    Core task · Importance 4.8/5 (O*NET)

Controlling Machines and Processes · 1 task

  • Care for athletic injuries, using physical therapy equipment, techniques, or medication.

    Core task · Importance 4.7/5 (O*NET)

Documenting/Recording Information · 1 task

  • Perform general administrative tasks, such as keeping records or writing reports.

    Core task · Importance 4.4/5 (O*NET) · 82% of observed AI use on this task is automation-pattern

Assisting and Caring for Others · 1 task

  • Apply protective or injury preventive devices, such as tape, bandages, or braces, to body parts, such as ankles, fingers, or wrists.

    Core task · Importance 4.2/5 (O*NET)

Providing Consultation and Advice to Others · 1 task

  • Instruct coaches, athletes, parents, medical personnel, or community members in the care and prevention of athletic injuries.

    Core task · Importance 4.2/5 (O*NET) · 38% of observed AI use on this task is automation-pattern

Task statements and work activities from the O*NET Database by the U.S. Department of Labor, Employment and Training Administration (USDOL/ETA), used under CC BY 4.0. O*NET® is a trademark of USDOL/ETA. USDOL/ETA has not reviewed or approved this material.

That's the average. Is this you?

Everything above describes Athletic trainers as a whole. Three questions, and nothing is stored or sent.

Where are you in your career?

What does your week mostly look like?

Is your employer deploying AI?

Where the leverage is

Upskill in AI-driven automation (e.g., Make, Zapier) and generative tools in your domain. The opportunity is to pivot from execution to directing AI-augmented workflows.

AI is transforming tasks rather than replacing entire jobs. Routine scheduling and communication automate, but human decision-making remains critical.

Canada transition step

Obtain technical certifications in advanced diagnostic tools and smart systems relevant to athletic trainers to prepare for future technological integrations.

This guidance is written per exposure band — three texts across all 342 occupations, framed on the ILO's transformation-versus-displacement distinction. It is editorial guidance for the reshaping band, not an occupation-specific research finding about athletic trainers.

Sources for this occupation

Only the sources that hold data for athletic trainers are listed. A study that does not cover this occupation is not cited here.

  • Microsoft Research — Working with AI (Tomlinson et al., arXiv:2507.07935): Measured AI applicability, from 200,000 anonymised Copilot conversations classified against O*NET work activities.
  • Anthropic Economic Index: Measured observed AI usage per occupation, from Anthropic's open per-SOC dataset (CC-BY 4.0).
  • Felten, Raj & Seamans — AI Occupational Exposure index: Measured academic exposure percentile; the index underlying Statistics Canada's Canadian AI-exposure estimates (Mehdi & Morissette, 2024).
  • O*NET Database 31.0 (USDOL/ETA), CC BY 4.0: The occupation's task statements and work activities, verbatim. Joined on SOC 2018 with no crosswalk — O*NET-SOC is built on SOC — and carrying no claim about which tasks AI touches.
  • Anthropic Economic Index — collaboration split (release 2026-06-26, CC-BY 4.0): Measured share of observed Claude usage following an automation rather than an augmentation pattern. This is the second axis of the grouping above.
  • Statistics Canada NOC 2021 concordance: Official SOC 2018 → NOC 2016 V1.3 → NOC 2021 V1.0 correspondence tables. TEER is the second digit of the resolved code, so we report it only where the concordance gave a single candidate.
  • ESDC COPS 2024–2033: Projected labour-market assessment per NOC 2021 unit group, from the Canadian Occupational Projection System open dataset.
  • BCG — AI Will Reshape More Jobs Than It Replaces (April 3, 2026): Published aggregate reshaping rates, used to calibrate our modelled percentages. The per-occupation figures here are our estimates, not BCG's data.

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This is the picture for the role. What about your skills?

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