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Firefighters

Put up to three roles next to each other: the exposure figure, the inputs behind it, the window, what is driving change, and where the work moves. Every figure comes from the same method, so the gap between two scores means something.

Firefighters

Exposure

Firefighters
9

Low exposure

More exposed than 1% of 250 roles

Window · adoption

7–15 yrs

until most of the change has landed

Low adoption

In one line

AI is improving detection, dispatch and situational awareness; the physical response, rescue and judgement on the fireground remain entirely human.

Inputs behind the score · scaled 0–100

Task applicability

14

Observed usage

0

Official exposure tier

10

Labour-market trajectory

n/a

Published adoption rating

10

What is driving it

  1. AI wildfire detection cameras
  2. Fire-spread and risk modelling
  3. Drones and thermal imaging
  4. Smarter dispatch and records systems
  5. Simulation-based training
  6. Very low measured task applicability

Skills worth building

  1. Core suppression, rescue and physical fitness
  2. Emergency medical qualification
  3. Drone operation and thermal imaging
  4. Incident command and decision-making
  5. Data and reporting literacy
  6. Interpreting models and sensors

Tools in the work now

  1. Pano AI
  2. Technosylva
  3. ESO Fire
  4. ImageTrend

Where the work moves

Dispatchers59

More exposed

Emergency Medical Technicians (EMTs)17

Different skills, growing

Police Officers37

Complementary, less exposed

Full report

Read Firefighters

Scores are the CareerGuard Exposure Index v2: the same five inputs and weights for every role, so a gap of ten points means the same thing wherever it appears. How scores are built.