Senior Data Engineer

Belgium | Aug. 11, 2026

Report as Closed

Company: EDITX BV

Country: Belgium

Type: Hybrid remote

Employment: Full-time

Description:

Role Name: Senior Data Engineer
Location: Antwerp, Belgium
Remote Work: Yes (Hybrid)
Start Date: 25/08/2026
End Date: 15/07/2027
Language Requirement: Dutch at CEFR C2 level

 

B. Main Responsibilities

Data Pipeline Engineering

  • Design, build, optimise, and maintain scalable data pipelines. 
  • Develop reliable data-processing workflows for large data volumes. 
  • Integrate data from multiple source systems. 
  • Build reusable and maintainable data-processing components. 
  • Monitor and improve pipeline performance and reliability. 

Microsoft Fabric Development

  • Develop solutions using Microsoft Fabric. 
  • Work with Fabric pipelines, dataflows, and notebooks. 
  • Build and maintain modern analytics and data-processing workloads. 
  • Support scalable ingestion, transformation, and processing patterns. 
  • Optimise Fabric-based data solutions for performance and maintainability. 

Data Integration

  • Integrate relational databases, APIs, files, applications, and other data sources. 
  • Design robust ingestion and transformation processes. 
  • Develop reusable data-integration patterns. 
  • Validate and monitor source-to-target data flows. 
  • Ensure reliable and consistent data delivery. 

Lakehouse & Data Warehouse Architecture

  • Design and maintain cloud-based lakehouse and warehouse solutions. 
  • Implement medallion architecture using Bronze, Silver, and Gold layers. 
  • Support modern Azure-based data architectures. 
  • Contribute to domain-oriented and data-mesh concepts where applicable. 
  • Ensure scalability, maintainability, and reuse across data products. 

Data Modelling

  • Translate reporting and analytics needs into data models. 
  • Develop reliable and reusable analytical datasets. 
  • Apply dimensional-modelling principles. 
  • Work with Kimball-based modelling concepts. 
  • Optimise data structures for reporting and business intelligence. 

Python & SQL Engineering

  • Develop data-processing logic using Python. 
  • Use Python for ETL and data-engineering workloads. 
  • Develop and optimise SQL queries. 
  • Improve query performance. 
  • Support database-related analysis and troubleshooting. 

Reporting & Analytics Support

  • Support Power BI and analytics environments. 
  • Prepare trusted datasets for reporting. 
  • Work with reporting specialists to understand analytical requirements. 
  • Improve the reliability and consistency of reporting data. 
  • Support self-service and enterprise analytics needs. 

Data Governance & Quality

  • Contribute to data-governance standards. 
  • Implement data-quality controls. 
  • Support metadata and lineage practices. 
  • Identify and resolve data-quality issues. 
  • Promote consistent data-management practices across the platform. 

CI/CD & DataOps

  • Support CI/CD for data solutions. 
  • Use version control for data engineering artefacts. 
  • Automate deployments across environments. 
  • Improve release and deployment processes. 
  • Apply modern DataOps and engineering practices. 

Documentation & Collaboration

  • Document pipelines, dataflows, data models, and a




 

C. Required Skills & Expertise

Must Have

  • Minimum 5 years of experience as a Data Engineer. 
  • Experience with cloud-based data architectures on Azure. 
  • Experience with lakehouse or data-warehouse concepts. 
  • Strong Microsoft Fabric experience, specifically: 
    • Pipelines 
    • Dataflows 
    • Notebooks 
  • Experience integrating data from multiple source systems. 
  • Experience supporting reporting and analytics environments. 
  • Minimum 3 years of Python experience within a data-engineering context. 
  • Experience with Python, Java, or Scala for data flows and ETL processes. 
  • Strong SQL knowledge. 
  • Query optimisation experience. 
  • Dutch language proficiency at CEFR C2 level. 

Should Have

  • Experience within a public-sector, municipal, or complex enterprise environment. 
  • ETL design and implementation. 
  • CI/CD for data solutions. 
  • Version control. 
  • Automated deployment of data solutions. 
  • Database experience. 
  • Medallion architecture. 
  • Bronze, Silver, and Gold data layers. 
  • Power BI. 
  • Spark or Spark-based processing. 
  • Data governance. 
  • Data-quality management. 
  • Data lineage. 
  • Kimball dimensional modelling. 
  • Lakehouse architecture. 
  • Data Mesh. 
  • Domain-oriented data architecture. 

Apply here:

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