Live opening · Posted 7 hours ago

Pyspark Role

Tata Consultancy Services (TCS) · Hyderabad, Telangana, India (On-site)
Linkedin No
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At a glance

The key details from the original listing.

Posted 7 hours ago
CompanyTata Consultancy Services (TCS)
LocationHyderabad, Telangana, India (On-site)
Work modeNo
SourceLinkedin
Listed7 hours ago

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About the role

Description supplied by the original job listing.

Open Position for Pyspark
We are seeking an experienced AWS Data Engineer to design, develop, and maintain scalable data solutions on the Amazon Cloud Platform (AWS). The ideal candidate will have strong expertise in building modern data pipelines, data warehousing, big data processing, and cloud-native analytics solutions. The role requires close collaboration with business stakeholders, data architects, data scientists, and application teams to deliver reliable and high-performance data platforms.
Design, develop, and optimize scalable data pipelines using AWS services.
Build and maintain batch and real-time data ingestion and processing frameworks.
Develop enterprise-grade data warehousing solutions using Py-Spark.
Convert Scala-based ETL, batch, and streaming pipelines into PySpark frameworks.
Optimize PySpark jobs for performance, scalability, and resource utilization.
Support cloud modernization initiatives on AWS/Databricks platforms.
Implement ETL/ELT processes for structured and unstructured data.
Integrate data from multiple sources including databases, APIs, files, and streaming platforms.
Ensure data quality, governance, security, and compliance across data platforms.
Automate deployment and operational processes using CI/CD and Infrastructure as Code (IaC).
Monitor data pipelines and troubleshoot production issues.
Collaborate with Data Architects, Business Analysts, and Data Scientists to translate business requirements into technical solutions.
Implement data models, metadata management, and data lineage best practices.
Support migration of on-premises or multi-cloud data platforms to AWS.
Lead the migration, modernization, and optimization of Apache Spark workloads on AWS EMR, including conversion of Scala-based Spark applications to PySpark, performance tuning, cluster optimization, dependency management, and ensuring scalable, cost-effective, and resilient data processing solutions.

Work arrangement
No

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