
201 - 500 employees
Founded 2006
🤝 B2B
💳 Fintech
☁️ SaaS
💰 $4M Post-IPO Debt on 2019-11
B2B • Fintech • SaaS
Versapay is a company offering a collaborative accounts receivable (AR) network designed for industry-leading AR automation and B2B payment solutions. The platform provides tools to automate AR tasks, manage cash applications, and facilitate B2B payments across channels, integrating with ERP systems like Microsoft Dynamics, NetSuite, and Sage Intacct. Versapay's solutions help teams collaborate effectively over the cloud, reducing manual processing and improving cash flow. The company focuses on simplifying the invoice-to-cash process using artificial intelligence, enhancing customer experience with easy-to-use portals, and offering comprehensive digital payment methods. Versapay also supports large-scale B2B transactions worldwide, promoting efficiency and environmental benefits through digital invoicing.
🔥 12 hours ago
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201 - 500 employees
Founded 2006
🤝 B2B
💳 Fintech
☁️ SaaS
💰 $4M Post-IPO Debt on 2019-11
B2B • Fintech • SaaS
Versapay is a company offering a collaborative accounts receivable (AR) network designed for industry-leading AR automation and B2B payment solutions. The platform provides tools to automate AR tasks, manage cash applications, and facilitate B2B payments across channels, integrating with ERP systems like Microsoft Dynamics, NetSuite, and Sage Intacct. Versapay's solutions help teams collaborate effectively over the cloud, reducing manual processing and improving cash flow. The company focuses on simplifying the invoice-to-cash process using artificial intelligence, enhancing customer experience with easy-to-use portals, and offering comprehensive digital payment methods. Versapay also supports large-scale B2B transactions worldwide, promoting efficiency and environmental benefits through digital invoicing.
• Define and drive Versapay’s enterprise data strategy, aligning the data roadmap to product, AI, and commercial objectives. • Lead the architectural convergence of transactional, operational, and analytical data layers into a unified, bi-directional operational backbone. • Own a multi-year data maturity roadmap across architecture, semantics, governance, and accessibility. • Establish canonical hierarchies, enterprise ontologies, and shared metric catalogues. • Operationalize data governance through automated classification, RBAC enforcement, platform SLAs, and certified data objects. • Formalize the Enterprise Data Catalogue and deploy an executive data health dashboard. • Enforce the data procurement gate and own the Enterprise Data Asset Registry. • Drive data infrastructure readiness for ML pipelines, LLM serving layers, and agentic serving tiers. • Establish schema contracts and semantic modelling standards for safe, scalable agent deployment. • Partner with Product and Engineering on reverse data flow, predictive model productization, and real-time data serving. • Govern sensitive data and external data products for quality, lineage, privacy, and compliance. • Evolve data requests into a governed, discoverable, product-oriented organization. • Operationalize external data products and partner with Commercial on data product commercialization. • Expand self-service data access while protecting compute capacity and governance standards. • Lead and grow the Data Platform Team in partnership with Embedded Analytics, Risk, and Compliance. • Bridge Product, Engineering, Commercial, Finance, and Legal/Compliance. • Build a culture of data discipline and represent the data function at executive level, partnering with the CTO.
• 10+ years of experience in data leadership, with at least 5+ years at the Director level owning enterprise data strategy, architecture, or governance. • Demonstrated track record of modernizing and unifying complex, multi-source data environments at scale — ideally in a SaaS, fintech, payments context. • Deep expertise in modern data stack: cloud data warehouses (Snowflake preferred), lakehouse architectures, ETL frameworks, and semantic/canonical modelling. • Strong evidence of application of AI and ML infrastructure — including how data governance, observability, and semantic standards underpin safe, scalable AI deployment. • Proven ability to build and lead high-performing technical teams and partner effectively across Product, Engineering, and Commercial functions. • Experience governing data for commercial use: external data products, consent frameworks, lineage standards, and privacy compliance. • Exceptional communication skills — able to translate complex data and architectural concepts for executive audiences and build alignment across functions. • Experience with managing the cost of data warehouses and cost forecasting. • Experience in hiring and managing talent across the entire data food chain – from BI and Analytics to Data Engineering to CI/CD of data platforms. • Experience with agentic AI architecture, MCP, or LLM serving layers and the data requirements that underpin them. • Familiarity with AR/AP automation, payments, or working capital platforms and the data models they generate. • Track record of commercializing data as a product — packaging data assets, building external APIs, or creating data-sharing programs with partners. • Experience managing data maturity transformations with structured roadmaps, measurable milestones, and executive visibility. • Hands-on experience with AWS-native data infrastructure (Glue, SageMaker, Bedrock) alongside Snowflake and modern BI tooling. • Background in a PE-backed, high-growth SaaS environment.
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