For years, enterprises have struggled to leverage their operational intelligence without exposing sensitive production data. Previously, teams relied on labor-intensive, piecemeal methods to reconstruct database logic for testing or machine learning, often missing the critical relationships and rare events buried across deep relational schemas. SDV 2.0 shifts this paradigm by automating the discovery of primary keys, foreign keys, and complex business constraints, turning raw database structures into cohesive generative models.
Kalyan Veeramachaneni, CEO of DataCebo, describes this as a shift from constant reconstruction to singular intelligence capture. The platform integrates with major systems including Oracle, SQL Server, BigQuery, Spanner, and AlloyDB. Real-world applications are already yielding results: ING Belgium utilized the technology to generate 10,000 synthetic payments in two minutes, while Epiconcept leveraged synthetic databases to optimize query performance by over 100 times.

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