AI exposure: Wind Energy Engineers
Design underground or overhead wind farm collector systems and prepare and develop site specifications.
Reading this score
computedWind Energy Engineers is one of the unusual cases where capability and friction are both high. Current systems can produce a great deal of this work, with average capability across its tasks at 2.2 out of 4. Only 31.2% of the weighted task load comes out as exposed, because 24.8% of it runs into something structural. Jobs in this band tend not to disappear. They change shape, and the person stays.
What holds the line here is context. Across this occupation's 16 tasks it averages 2.12 out of 3, the highest of the five friction dimensions. In plain terms, the work depends on knowledge the model cannot hold. Much of this job runs on things that were never written down: what this particular organisation does, what happened last week, what the person across the table actually meant. That context is the barrier, and it erodes as systems are given more access.
The most exposed thing this job does is Write reports to document wind farm collector system test results, at 73.3%. The least is Direct balance of plant (BOP) construction, generator installation, testing, commissioning, or..., at 3.3%. A gap of 70.0% between two parts of the same job is the reason this index publishes at task level. An occupation-wide number would have hidden both.
Within architecture and engineering occupations, this one is less exposed than the median of 37.5% across the group's 56 roles, with 45 scoring higher. Being in an exposed family does not make a particular job exposed, and the reverse holds too.
What would move this score. Of 16 tasks, 9 are currently banded exposed, 3 assisted and 4 untouched. For that distribution to shift materially would take a change in who is permitted to sign the work, which is a question for regulators rather than for engineers. The score is re-computed every quarter against a fresh capability reference, and the change is published rather than quietly applied.
Where the score comes from
judgedEvery task is scored through the standardised work activities it maps to. These are this occupation’s averages on the six rubric dimensions. Capability is what AI can do; the other five are what stands in the way.
| Dimension | Mean | Scale |
|---|---|---|
| Capability | 2.25 | 0-4 |
| Embodiment | 0.94 | 0-3 |
| Presence | 0.62 | 0-3 |
| Accountability | 1.88 | 0-3 |
| Context | 2.12 | 0-3 |
| Verification cost | 2.12 | 0-3 |
What this means in practice
Roles in this band tend to change shape rather than disappear. The output gets drafted faster and the person moves toward review, judgment and accountability. The useful question is not whether to use these tools but who is trusted to sign off on what they produce.
Task by task
16 tasks, O*NET 31.0| Task | Exposed | Assisted | Untouched | Importance | Band |
|---|---|---|---|---|---|
| Write reports to document wind farm collector system test results. | 73.3% | 26.7% | 0.0% | 2.81 | exposed |
| Analyze operation of wind farms or wind farm components to determine reliability, performance, and compliance with specifications. | 55.0% | 20.0% | 25.0% | 3.00 | exposed |
| Provide engineering technical support to designers of prototype wind turbines. | 50.0% | 25.0% | 25.0% | 3.80 | exposed |
| Recommend process or infrastructure changes to improve wind turbine performance, reduce operational costs, or comply with regulations. | 45.0% | 30.0% | 25.0% | 3.72 | exposed |
| Investigate experimental wind turbines or wind turbine technologies for properties such as aerodynamics, production, noise, and load. | 45.0% | 30.0% | 25.0% | 3.63 | exposed |
| Develop specifications for wind technology components, such as gearboxes, blades, generators, frequency converters, or pad transformers. | 45.0% | 30.0% | 25.0% | 3.43 | exposed |
| Perform root cause analysis on wind turbine tower component failures. | 40.0% | 35.0% | 25.0% | 2.97 | exposed |
| Create or maintain wind farm layouts, schematics, or other visual documentation for wind farms. | 30.0% | 20.0% | 50.0% | 3.88 | exposed |
| Create models to optimize the layout of wind farm access roads, crane pads, crane paths, collection systems, substations, switchyards, or transmission lines. | 30.0% | 20.0% | 50.0% | 3.54 | exposed |
| Develop active control algorithms, electronics, software, electromechanical, or electrohydraulic systems for wind turbines. | 20.0% | 30.0% | 50.0% | 3.45 | assisted |
| Monitor wind farm construction to ensure compliance with regulatory standards or environmental requirements. | 20.0% | 30.0% | 50.0% | 3.20 | assisted |
| Design underground or overhead wind farm collector systems. | 20.0% | 30.0% | 50.0% | 2.91 | assisted |
| Test wind turbine components, using mechanical or electronic testing equipment. | 8.3% | 16.7% | 75.0% | 3.41 | untouched |
| Test wind turbine equipment to determine effects of stress or fatigue. | 8.3% | 16.7% | 75.0% | 3.40 | untouched |
| Oversee the work activities of wind farm consultants or subcontractors. | 3.3% | 21.7% | 75.0% | 3.40 | untouched |
| Direct balance of plant (BOP) construction, generator installation, testing, commissioning, or supervisory control and data acquisition (SCADA) to ensure compliance with specifications. | 3.3% | 21.7% | 75.0% | 3.01 | untouched |
Task text and importance ratings sourced from O*NET 31.0. Shares computed. The occupation score is the importance-weighted mean.
Occupations either side of this one
The four closest scores in the same occupational family, then the four closest anywhere in the index.
Read this carefully. Exposure is not displacement. A high score means current AI systems can produce this work, not that anyone will stop paying a person to do it. Adoption depends on economics, regulation and inertia that this index deliberately does not model. How the score is built.