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About Stolt Nielsen:
Stolt-Nielsen is a family-founded global leader in bulk-liquid and chemical logistics, transportation, and storage, known for its commitment to safety, service excellence, and innovation. At the Stolt-Nielsen Digital Innovation Centre, we bring this legacy into the future — building smarter systems, driving digital transformation, and shaping what's next for the world of logistics. Here, you're encouraged to think boldly, challenge convention, and help move today's products toward tomorrow's possibilities.
About the Role:
We're looking for a Data Engineer with strong Databricks, Python, and SQL skills to build and optimize the data infrastructure that powers our analytics and AI initiatives.
In this role, you'll design and maintain reliable data pipelines, ensure data quality and performance, and enable data-driven decision-making across the organization. We believe that Data Engineers become only more relevant in the age of Generative AI, as we are transitioning to using solutions like Databricks Genie that rely on well-modelled and described data.
You'll work closely with analysts, data scientists, and business stakeholders to turn raw data into trusted, accessible, and actionable insights.
At Stolt-Nielsen, we take Digital seriously. We invest in our teams through training and mentoring and enable them with the required tools to work in a modern way (Engineering laptops, Cursor licenses). As we are further building up our engineering practice, there is ample room for you to contribute, take initiative and shape the future of our ways of working and technology landscape.
What You'll Do:
What You'll Bring:
Must Have Skills:
Nice to have Skills:
Job ID: 153688649
Skills:
turtle , Spark SQL, Sparql, Data Factory, Pyspark, Sql, ELT, Azure Cosmos DB, Etl, Data Catalog, cdc, SCD, Dataflow Gen2, Azure Data Platform, Delta Lake, data mesh, Gremlin
Skills:
Pyspark, Emr, Pulumi, Sql, Kinesis, Terraform, Spark, Databricks, Apache Iceberg, Airflow, AWS CDK, Sigma, AI coding assistants, dbt, Delta Lake, AI-native engineering workflows
Skills:
C#, Api Development, Apache Spark, Azure Databricks, Azure Sql, Sql, Azure Data Factory, Azure Functions, Powerbi, Spark, Databricks, Azure Storage, Python, Kubernetes, BI Development, Prisma Cloud, Azure Workbook, Microservice automation, Azure SQL TSQL, Microsoft Fabric, Azure Data Services
Skills:
Cloud Storage, BigQuery, Docker, Apache Beam, DataFlow, Sql, Kubernetes, Python, Pub Sub, Airflow, Apache IceBerg
Skills:
Sql, Azure Data Factory, MySQL, Plsql, Rest Apis, Query Optimization, Data migration techniques, Data quality tools and techniques, Data quality evaluation, Stored procedures, Azure Data Lake Storage, Data integration techniques, Indexing and performance tuning