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9-10 september 2026

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Data & AI Monitor 2025

2025 markeert de start van een nieuwe fase in AI-adoptie.

Interview: "Waarom datagedreven werken vaak mislukt"

Louis de Roo | e-mergo

Interview: "In de beperking toont zich de meester"

Frans Feldberg | Vrije Universiteit Amsterdam

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9-10 september 2026 | Jaarbeurs Utrecht Gratis ticket Voor bezoekers

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Alle informatie over exposeren in één document.

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Programma

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Lezing geven

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Exposantenlijst Blog & Kennis

Blog & Kennis

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Blog

Whitepaper & e-books

3-delige video serie

De Dataloog

Uitgelicht

Data & AI Monitor 2025

2025 markeert de start van een nieuwe fase in AI-adoptie.

Interview: "Waarom datagedreven werken vaak mislukt"

Louis de Roo | e-mergo

Interview: "In de beperking toont zich de meester"

Frans Feldberg | Vrije Universiteit Amsterdam

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Big Data Expo Vorm F (1) Big Data Expo Vorm C (1)

How NIBC Built a Highly Governed dbt Practice at Scale

Woensdag 13:45 - 14:15
Lezingenzaal 1
Martijn van Velzen

Associate Director Data Platforms

Meer over deze spreker

Most data teams set out to build a well-documented, well-tested, and cleanly governed data platform — few actually get there. NIBC, a Dutch bank, did. In this session, NIBC’s data team will share how they built a dbt Mesh hub-and-spoke architecture on Databricks — a central Cloud Data Platform hub handling all source ingestion, feeding domain-specific spokes for Finance, Risk, Retail, and Listing — anchored by a banking-specific conceptual data model (parties, products, collateral) shaped directly by regulatory and financial reporting requirements. The result is documentation coverage far above the industry norm (where 10% is typical), driven by data delivery agreements that mandate data dictionaries with GDPR and sensitivity classifications at ingestion, plus disciplined use of dbt exposures, clean environment separation, and cross-project governance that most banks are still trying to design.

Attendees will walk away with concrete, replicable practices for closing the gap between “we want to be well-documented and well-tested” and actually being so. Attendees will also learn how a multi-project dbt mesh can keep domain teams autonomous while staying governed centrally, and where NIBC is still evolving even within a mature setup — from tightening production job reliability to exploring native model versioning.

Tamas Marton

Senior Data Platform Engineer

Meer over deze spreker

Most data teams set out to build a well-documented, well-tested, and cleanly governed data platform — few actually get there. NIBC, a Dutch bank, did. In this session, NIBC’s data team will share how they built a dbt Mesh hub-and-spoke architecture on Databricks — a central Cloud Data Platform hub handling all source ingestion, feeding domain-specific spokes for Finance, Risk, Retail, and Listing — anchored by a banking-specific conceptual data model (parties, products, collateral) shaped directly by regulatory and financial reporting requirements. The result is documentation coverage far above the industry norm (where 10% is typical), driven by data delivery agreements that mandate data dictionaries with GDPR and sensitivity classifications at ingestion, plus disciplined use of dbt exposures, clean environment separation, and cross-project governance that most banks are still trying to design.

Attendees will walk away with concrete, replicable practices for closing the gap between “we want to be well-documented and well-tested” and actually being so. Attendees will also learn how a multi-project dbt mesh can keep domain teams autonomous while staying governed centrally, and where NIBC is still evolving even within a mature setup — from tightening production job reliability to exploring native model versioning.

Most data teams set out to build a well-documented, well-tested, and cleanly governed data platform — few actually get there. NIBC, a Dutch bank, did. In this session, NIBC’s data team will share how they built a dbt Mesh hub-and-spoke architecture on Databricks — a central Cloud Data Platform hub handling all source ingestion, feeding domain-specific spokes for Finance, Risk, Retail, and Listing — anchored by a banking-specific conceptual data model (parties, products, collateral) shaped directly by regulatory and financial reporting requirements. The result is documentation coverage far above the industry norm (where 10% is typical), driven by data delivery agreements that mandate data dictionaries with GDPR and sensitivity classifications at ingestion, plus disciplined use of dbt exposures, clean environment separation, and cross-project governance that most banks are still trying to design.

Attendees will walk away with concrete, replicable practices for closing the gap between “we want to be well-documented and well-tested” and actually being so. Attendees will also learn how a multi-project dbt mesh can keep domain teams autonomous while staying governed centrally, and where NIBC is still evolving even within a mature setup — from tightening production job reliability to exploring native model versioning.

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