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30 June 2026
GuideLiteracy

A Practical Guide to Your First AI Literacy Assessment

You cannot target training you have not measured. Here is how to run a readiness assessment that actually changes what you do next.

Every organisation running AI training is guessing about who needs what. An assessment replaces the guess with a map.11The guess is expensive — it usually means everyone sits the same course regardless of need.

The goal is not a score. It is a decision: where to spend the next training baht.

Measure four dimensions, not one

A single "AI skill" number hides the gaps that matter. We assess four:By the numbers4dimensions we score, because one number hides the gaps that matter

  • Foundations — what the tools are, what they can and cannot do.
  • Applied use — can they get real work done with them today.
  • Judgment and risk — do they know when not to trust an output.
  • Workflow integration — is AI part of how the job is done, or a side experiment.

Report by cohort, not by name

The fastest way to kill honest answers is to make the assessment feel like a performance review. Report results by department and role, not by individual. You are diagnosing a system, not grading people.FigureResults map to cohorts, so training can be aimed where it actually lands.Results map to cohorts, so training can be aimed where it actually lands.

Turn the result into a plan

A readiness snapshot is only useful if it forces a choice. A good output looks like:

  1. Which cohorts are ready for advanced, workflow-specific training.
  2. Which need foundations first.
  3. Where confidence outruns capability — the riskiest gap of all.DefinitionConfidence–capability gap When belief in one's AI skill outruns actual ability — the pattern most likely to produce unsafe use.

Re-assess every six to twelve months, or after any major rollout. Readiness is a moving target, and the point is to watch it move.RelatedWhy measurement keeps a rollout alive

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