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SAP BW
  • Posted 9 hours ago
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Job Description

Technology->Business Intelligence - Reporting->SAP BW

Key Responsibilities:

  • Lead end-to-end delivery of data engineering solutions leveraging Databricks and PySpark for scalable processing and transformation.
  • Design, build, and optimize batch/near-real-time pipelines with strong focus on performance, cost efficiency, and reliability.
  • Collaborate with SAP BW stakeholders to understand source models, data semantics, and reporting needs; translate them into modern data platform designs.
  • Develop reusable frameworks, coding standards, and best practices for Spark-based development and notebook/job orchestration.
  • Ensure data quality through validations, reconciliation checks, and robust error handling/monitoring across pipelines.
  • Drive technical discussions, estimate work, plan sprints, and manage delivery risks/dependencies for the team.
  • Mentor engineers, conduct code reviews, and enforce secure, maintainable, and well-documented implementations.
  • Partner with platform/DevOps teams to support CI/CD, environment management, and production readiness for Databricks workloads. Minimum Qualifications:
  • Bachelor's or Master's degree (BTECH, MTECH, MCA, MSC) in Computer Science, Engineering, or a related field.
  • 7–9 years of overall experience with strong hands-on expertise in Databricks and PySpark for large-scale data processing.
  • Strong experience working with SAP BW concepts and data structures to support analytics/reporting requirements.
  • Solid understanding of data modeling, ETL/ELT patterns, and performance tuning in distributed data processing environments.
  • Ability to lead technical delivery, collaborate with stakeholders, and communicate clearly across teams. Preferred Qualifications:
  • Experience modernizing or integrating SAP BW data with cloud-based lakehouse architectures using Databricks.
  • Strong knowledge of Spark optimization techniques (partitioning, caching, joins, file sizing) and production-grade pipeline design.
  • Exposure to Delta Lake patterns (ACID tables, MERGE, time travel) and building curated layers for analytics consumption.
  • Experience with workflow orchestration and operational monitoring for data pipelines, including alerting and SLA management.
  • Proven ability to guide teams through design reviews, code quality improvements, and delivery governance in agile environments.

More Info

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Key Skills

Spark optimization techniques

Delta Lake

CI/CD

Workflow orchestration

About Company

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