Live opening · Posted 6 hours ago
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About the role
Description supplied by the original job listing.
Spark-Java, Databricks
Key Responsibilities:
Design, develop, and maintain Spark-based data processing jobs using Java aligned to business and technical requirements.
Build and enhance ETL workflows, ensuring accuracy, completeness, and consistency of processed datasets.
Implement integrations and workflows on DBX, supporting scalable execution and operational reliability.
Optimize Spark jobs for performance (partitioning, caching, shuffle tuning) and cost efficiency.
Write clean, maintainable code with appropriate logging, error handling, and unit/integration tests.
Troubleshoot production issues, perform root-cause analysis, and implement preventive fixes.
Collaborate with cross-functional teams to refine requirements, plan deliveries, and ensure smooth releases.
Document technical designs, data flows, and operational runbooks to support long-term maintainability. Minimum Qualifications:
3–5 years of hands-on experience in software/data engineering roles.
Bachelor’s or Master’s degree: BTECH, MTECH, MCA, MSC.
Strong programming experience in Java with solid understanding of OOP and coding best practices.
Practical experience with Apache Spark for batch data processing.
Experience building and supporting ETL pipelines and data transformations.
Working knowledge of DBX for developing and running data workflows. Preferred Qualifications:
Experience designing end-to-end data pipelines including ingestion, transformation, validation, and publishing layers.
Strong understanding of distributed processing concepts and Spark internals for performance tuning and stability.
Exposure to CI/CD practices for data/engineering workflows and disciplined release management.
Experience with production monitoring, alerting, and operational support for data pipelines.
Proven ability to collaborate with stakeholders, communicate trade-offs, and deliver within timelines.
Work arrangement
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