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ADF (Azure Data Factory) + Databricks+ Snowflake

ADF (Azure Data Factory) + Databricks+ Snowflake

Infosys
7-9 Years
Not Disclosed
Early Applicant
  • Posted 2 days ago
  • Be among the first 10 applicants

Job Description

Technology->Cloud Integration->Azure Data Factory (ADF) Technology->Data Engineering->Databricks Technology->Data on Cloud->Snowflake

Key Responsibilities:

  • Lead end-to-end implementation of data ingestion and orchestration workflows using ADF, including scheduling, dependency management, parameterization, and error handling.
  • Design and develop scalable data processing pipelines in Databricks using Spark-based transformations for batch and incremental loads.
  • Build and optimize ELT/ETL patterns integrating Snowflake as a target/source, ensuring performance, reliability, and cost efficiency.
  • Define data pipeline standards (naming, modularity, reusability) and enforce engineering best practices across the team.
  • Implement monitoring, alerting, and operational runbooks for production pipelines; drive incident triage and root-cause analysis.
  • Collaborate with stakeholders to translate requirements into technical designs, estimates, and delivery plans; manage risks and dependencies.
  • Conduct code reviews, mentor engineers, and guide technical decisions to ensure maintainable and secure solutions.
  • Improve pipeline performance through tuning, partitioning strategies, and efficient data layout/processing approaches. Minimum Qualifications:
  • BTECH, MTECH, MCA, or MSC.
  • 7–9 years of overall experience with strong hands-on expertise in ADF and Databricks for building production-grade data pipelines.
  • Proven experience designing and supporting reliable ETL/ELT workflows, including scheduling, retries, and failure recovery patterns.
  • Strong SQL skills and experience working with large datasets and data quality considerations.
  • Experience collaborating with cross-functional teams and leading technical delivery with ownership mindset. Preferred Qualifications:
  • Strong experience integrating and optimizing workloads with Snowflake, including loading strategies and performance tuning.
  • Experience implementing medallion/lakehouse-style architectures and scalable data modeling patterns for analytics consumption.
  • Familiarity with CI/CD practices for data engineering workflows and automated testing approaches for pipelines.
  • Experience with production observability practices (pipeline metrics, logging, alerting) and operational excellence.
  • Demonstrated ability to mentor team members, drive design discussions, and influence engineering standards across projects.

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