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Lufthansa Technik Services India Pvt Ltd Linkedin · Posted 2mo ago

Lufthansa Technik Services - Data Engineer - Azure & Databricks

India

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Job Description

Role & Responsibilities :

Data Engineering & Transformation

  • Design, develop, and maintain scalable data transformation pipelines using Python (with tools like PySpark, ADF) and SQL in Azure Databricks.
  • Implement transformation logic to move data from Bronze to Silver/Gold layers following data engineering best practices.
  • Apply strong data engineering principles to ensure data reliability, quality, performance, and reusability.
  • Work with structured and semi-structured data at scale.

Databricks, Azure & Cloud ETL

  • Build and manage Databricks notebooks, jobs, Delta Lake tables, and orchestrated workflows.
  • Hands-on experience with Cloud-based ETL platforms (Preferred: Microsoft Azure Databricks, Synapse, Azure Functions; otherwise AWS or Google Cloud).
  • Optimize data pipelines for performance, scalability, and cost efficiency.

Python Applications, APIs & Automation

  • Design, develop, and maintain Python applications, scripts, and APIs for data processing and automation.
  • Write production-grade Python code with strong focus on readability, maintainability, and testing.
  • Leverage Python for orchestration, validation, and integration with downstream systems.

Collaboration With Data Science & Engineering Teams

  • Collaborate closely with Data Scientists and Data Analysts to understand data, analytical models, and consumption requirements.
  • Enable and support advanced analytics and data science workflows by preparing high-quality feature datasets.
  • Translate analytical needs into scalable data engineering solutions.

CI/CD, DevOps & Platform Engineering

  • Build and maintain automated CI/CD pipelines for data and Databricks workloads.
  • Hands-on experience with DevOps tools and practices, including Git-based version control.
  • Exposure to containerization and orchestration platforms such as Kubernetes / OpenShift.
  • Ensure smooth promotion of code and pipelines across environments (Dev/Test/Prod).

Data Modeling & Querying

  • Design and implement robust data models optimized for analytics and reporting.
  • Strong hands-on knowledge of SQL and exposure to KQL or other query languages.
  • Apply best practices in data structures, indexing, and performance tuning.

UI / UX & Data Applications (Additional Advantage)

  • Open to contributing to data-driven UI/UX components, dashboards, or lightweight data applications.
  • Work with analytics and business teams to improve data usability and customer experience.

Must-Have

Preferred Candidate Profile :

  • Strong hands-on expertise in Python (with frameworks like PySpark).
  • Solid foundation in Data Engineering principles and large-scale data processing.
  • Experience with Azure Databricks and cloud-based ETL platforms.
  • Strong knowledge of SQL and data querying techniques.
  • Experience with CI/CD pipelines and DevOps practices.
  • Experience in pipeline monitoring and alerting.
  • Ability to design efficient, scalable solutions to complex data problems.

Good-to-Have

  • Experience with Azure Synapse, Azure Functions.
  • Exposure to AWS or Google Cloud data platforms.
  • Hands-on experience with OpenShift.
  • Knowledge of data science concepts and workflows.
  • Familiarity with analytics platforms, dashboards, and UI/UX considerations.

(ref:hirist.tech)
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