AI is generating enormous expectations, but Gartner predicts that 60% of AI projects without AI-ready data will be abandoned. The gap between AI ambition and AI outcomes is, at its core, a data trust problem.
This white paper makes the economic case for treating trusted data as a strategic driver, showing how to quantify its cost, design trust into your data products, and build a repeatable operating model that accelerates AI adoption and compounds value over time.
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