Senior ETL Data Engineer

Posted Yesterday
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Chennai, Tamil Nadu, IND
In-Office
Senior level
Artificial Intelligence • Analytics • Business Intelligence • Consulting
The Role
Designs, builds, optimizes, and monitors scalable ETL/ELT pipelines, data models, warehouses, and lakes. Develops Power BI datasets, DAX measures, semantic layers, refresh pipelines, and performance optimizations. Ensures data quality, governance, security, and row-level security while supporting CI/CD releases and production troubleshooting. Partners with BI and business stakeholders, mentors junior engineers, and establishes data engineering best practices.
Summary Generated by Built In

Senior ETL Data Engineer
Experience:
8 - 10 years | Level: Senior

About the Role
 We're looking for a Senior ETL Data Engineer to design, build, and optimize scalable data pipelines that power analytics, reporting, and machine learning initiatives across the organization. You'll own the full lifecycle of data pipeline development — from ingestion to transformation to delivery — while also enabling downstream BI consumption through well-structured, reporting-ready datasets. You'll mentor junior engineers and drive best practices in data engineering.

Key Responsibilities

      Design, develop, and maintain robust, scalable ETL/ELT pipelines to ingest data from diverse sources (databases, APIs, flat files, streaming sources)

      Build and optimize data models (star/snowflake schemas) for data warehouses and data lakes, structured for efficient BI consumption

      Own end-to-end pipeline orchestration, monitoring, and error handling to ensure high reliability and data quality

      Optimize SQL queries and pipeline performance for large-scale datasets

      Partner with BI developers and business stakeholders to design semantic layers and datasets that support Power BI dashboards and reports

      Build and maintain Power BI data models (star schema), DAX measures, and dataset refresh pipelines, ensuring alignment with underlying ETL structures

      Optimize Power BI datasets and queries for performance, including incremental refresh strategies and efficient data source connections (Import vs. DirectQuery)

      Implement data quality checks, validation frameworks, and observability/monitoring for pipelines

      Manage and evolve CI/CD practices for data pipeline (and where applicable, Power BI deployment pipeline) releases

      Ensure data governance, security, and row-level security (RLS) standards are met across pipelines and Power BI reports

      Mentor junior data engineers and contribute to engineering best practices and documentation

      Troubleshoot and resolve production pipeline and reporting issues, ensuring minimal downtime

 

Required Skills & Qualifications

      8-10 years of hands-on experience in data engineering with a strong focus on ETL/ELT pipeline development

      Strong proficiency in SQL and at least one programming language (Python preferred)

      Hands-on experience with ETL/orchestration tools such as Apache Airflow, dbt, Informatica, Talend, or SSIS

      Solid experience with cloud data platforms (AWS Redshift/Glue, Azure Data Factory/Synapse, or GCP BigQuery/Dataflow)

      Experience working with both relational databases (PostgreSQL, MySQL, SQL Server) and big data technologies (Spark, Hadoop, Hive)

      Strong understanding of data warehousing concepts, dimensional modeling, and data architecture principles

      Working knowledge of Power BI — building data models, writing DAX, and designing dashboards/reports connected to enterprise data pipelines

      Understanding of Power BI performance optimization (incremental refresh, aggregations, query folding, Import vs. DirectQuery trade-offs)

      Experience with data pipeline orchestration, scheduling, and monitoring frameworks

      Familiarity with version control (Git) and CI/CD pipelines for data engineering workflows

 

 

 



Skills Required

  • 8–10 years of hands-on data engineering experience focused on ETL/ELT pipeline development
  • Strong proficiency in SQL
  • Proficiency in at least one programming language, preferably Python
  • Hands-on experience with ETL/orchestration tools such as Apache Airflow, dbt, Informatica, Talend, or SSIS
  • Experience with cloud data platforms such as AWS Redshift/Glue, Azure Data Factory/Synapse, or GCP BigQuery/Dataflow
  • Experience with relational databases including PostgreSQL, MySQL, or SQL Server
  • Experience with big data technologies including Spark, Hadoop, or Hive
  • Strong understanding of data warehousing, dimensional modeling, and data architecture principles
  • Working knowledge of Power BI, including data modeling, DAX, and dashboard/report design
  • Understanding of Power BI performance optimization, including incremental refresh, aggregations, query folding, and Import versus DirectQuery
  • Experience with data pipeline orchestration, scheduling, and monitoring frameworks
  • Familiarity with Git and CI/CD pipelines for data engineering workflows
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The Company
117 Employees
Year Founded: 2008

What We Do

Kavi Global is a data analytics and AI company that helps enterprises make intelligent, data-driven decisions. It provides analytics software, solutions, and services spanning strategy, design, development, implementation, and support. Its capabilities include business intelligence, data warehousing, big data, advanced analytics, machine learning, data management, and AI, serving organizations across multiple industries and supporting digital transformation initiatives.

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