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Building an AI Use-Case Portfolio

How organisations find, prioritise and manage AI opportunities across the business.

Editorial team 1 min read

Most organisations have more possible AI projects than capacity. A portfolio approach helps choose well.

Discover Opportunities

  • Interview teams about repetitive, text-heavy or prediction-heavy work.
  • Review processes with high volume, delays or error rates.
  • Look at customer pain points.

Assess Each Use Case

  • Value: impact if successful.
  • Feasibility: data availability, technical difficulty, integration.
  • Risk: harm from errors, regulatory exposure.
  • Readiness: a sponsoring team and clear owner.

Prioritise

Plot value against feasibility. Start with valuable, feasible, lower-risk projects to build capability and credibility.

Balance the Portfolio

Mix quick wins with longer-term strategic projects.

Stage Gates

Move projects from exploration to pilot to production with clear criteria at each stage, and stop projects that aren't working.

Reuse

Shared platforms, data and components make each new project cheaper.

Review Regularly

As AI capabilities change, previously infeasible use cases may become viable.

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