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We're looking for a Data Engineer to help build and run the data platform that powers analytics, operational reporting, and AI-enabled products.
This is fundamentally a data engineering and systems-thinking role. We care less about fluency in a particular framework and more about your ability to reason across the full data lifecycle—from ingestion and raw storage through transformation, modelling, serving, and production operations. You should understand how decisions at one stage of a pipeline affect correctness, reliability, performance, cost, and usability downstream.
What you'll work on
What we're looking for
Critical Skills
We value depth in data engineering over familiarity with a long list of tools. That depth includes understanding the entire path data takes through a system. We want someone who can explain where correctness can be lost, where bottlenecks emerge, why a particular storage or modelling approach fits the problem, and how the system will behave as scale and requirements change.
If you can walk through a data platform end to end—explain its design choices, identify its risks, and describe how you would keep it reliable in production—we'd like to talk to you.
Job ID: 153651465
Skills:
Metadata Management, Pyspark, Data Warehousing, Data Modeling, Azure Synapse, Encryption, Spark SQL, Sql, Git, Azure Data Factory, Data Governance, Purview, lineage, Key Vault, PII handling, Security, Event Hubs, Notebooks, DevOps practices, ADLS Gen2, Dataflows Gen2, semantic layer design, rbac, Lakehouse, CI CD pipelines, Delta Lake, Microsoft Fabric, Azure Data Services
Skills:
react.js , Data Quality, Etl, data pipelines
Skills:
T-sql, Data Warehousing, Data Modeling, ELT, Azure Data Factory, Azure Synapse Analytics, Data Governance, Data Lake, Etl, data quality checks, lakehouse concepts, workflow automation, data orchestration, Azure Data Services
Skills:
Java, Cassandra, Scala, Kafka, Big Data, Sql, Nosql, Hive, RDBMS, Presto, Spark, MongoDB, Python, HDFS
Skills:
Python, Power Bi, Databricks, Sql, Etl, ELT, Data Warehousing, Apache Spark, Data Lakehouse Architectures, Azure Services