Most AI ROI conversations focus on the cost of the platform and skip the harder, more important question: ROI compared to what baseline?
Every AI vendor conversation eventually gets to ROI, and most of them jump straight to case-study percentages — "30% less downtime," "20% fewer defects" — without grounding those numbers in your specific baseline. A 30% reduction in downtime is worth very different amounts depending on what downtime is currently costing you.
Before evaluating any AI platform, get a real number for what the problem currently costs: hours of downtime per month multiplied by the cost of that downtime, or defect rate multiplied by rework and scrap cost. That baseline is what any ROI projection should be measured against — not an industry-average benchmark from someone else's plant.
A scoped pilot isn't just a way to de-risk a decision — it's the fastest way to get a real ROI number specific to your plant, rather than relying on someone else's case study. Most credible engagements are structured around proving that number on one line before scaling.
Not every AI initiative pays back quickly, and a platform that solves the wrong problem — however well it works technically — won't show ROI. The discipline that matters most is picking the problem with the clearest, most measurable cost first.
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