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Databricks Data Engineer

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Summary

A Data Engineer will design, build, and maintain scalable Databricks/Apache Spark data pipelines and help develop a modern lakehouse platform powering analytics, ML, and AI use cases. Core stack: Databricks, PySpark, SQL, Delta Lake, and cloud platforms (Azure/AWS/GCP).

Data Engineer with Databricks

We are looking for a Data Engineer with strong Databricks experience to join a data & AI project focused on building a modern, scalable data platform supporting analytics, machine learning and AI use cases.

What you’ll do

  • Design, build and maintain scalable data pipelines using Databricks and Apache Spark.
  • Integrate data from multiple sources and build reliable, reusable data flows.
  • Develop and optimize data processing solutions for large volumes of data.
  • Work closely with Data Scientists, Analysts and business stakeholders to deliver data products supporting ML, BI and analytics.
  • Contribute to the development of a unified data platform and high-quality data layer.
  • Ensure data pipelines are reliable, scalable, performant and easy to maintain.
  • Optimize data processing and infrastructure with a focus on performance, scalability and cost efficiency.
  • Implement and maintain data quality, monitoring and data engineering best practices.
  • Support the development and evolution of modern lakehouse and cloud data architectures.

Your experience

Hands-on experience with Databricks is required.

  • Strong experience in Data Engineering and building production-grade data pipelines.
  • Strong SQL and PySpark / Apache Spark skills.
  • Experience working with large datasets and distributed data processing.
  • Good understanding of modern data platform, lakehouse and data architecture concepts.
  • Experience with cloud environments such as Azure, AWS or GCP.
  • Experience with Delta Lake and data orchestration tools is a strong advantage.
  • Experience working with different data sources, formats and integration patterns.
  • Ability to work closely with Data Scientists, Analysts and other technical stakeholders and understand their data requirements.
  • Strong problem-solving skills and a pragmatic approach to data engineering.

Relevant experience

You should have hands-on experience in one or more of the following areas:

  • Data Platform & Lakehouse Engineering – building scalable platforms for analytics, reporting, ML and AI workloads.
  • Data Integration & Transformation – integrating structured and unstructured data from multiple source systems into reliable, reusable data pipelines.
  • Data Quality & Governance – implementing processes and frameworks for data quality, monitoring, lineage and governance.

Tech stack

Databricks, Apache Spark, PySpark, SQL, Delta Lake, Cloud (Azure / AWS / GCP)

Why join?

You’ll be part of a large-scale data & AI transformation, building the data foundations that power analytics, machine learning and AI use cases while working with modern Databricks and lakehouse architecture.

Skills

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See also

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