Senior Data Engineer
Kanerika Inc
5 - 7 years
Hyderabad
Posted: 29/01/2026
Job Description
About The Role
We are seeking a skilled Data Engineer with strong experience in Databricks, Microsoft Fabric, or Snowflake , along with Power BI expertise , to design, build, and optimize scalable data pipelines and analytics solutions. You will also play a key role in enabling effective data visualization and reporting for business stakeholders.
Key Responsibilities
- Design, develop, and maintain ETL/ELT pipelines using Databricks, Fabric, or Snowflake.
- Build and optimize data workflows for performance, scalability, and cost efficiency in cloud environments (Azure/AWS/GCP).
- Implement and manage data lakes, data warehouses, or lakehouse architectures .
- Develop and maintain Power BI dashboards and reports to support business insights and decision-making.
- Collaborate with cross-functional teams to define data requirements, governance standards, and best practices .
- Ensure data quality, integrity, and security across all platforms.
- Automate workflows and support CI/CD deployments for data solutions.
- Monitor and troubleshoot pipelines and dashboards to ensure high availability and reliability.
Required Qualifications
- Bachelors/Masters degree in Computer Science, Information Technology, Engineering, or related field.
- 5-7 years of experience in Data Engineering.
- Proven experience as a Data Engineer with expertise in Databricks OR Fabric OR Snowflake .
- Hands-on experience with Power BI (data modeling, DAX, dashboard creation, performance optimization).
- Strong proficiency in SQL and at least one programming language (Python/Scala/Java).
- Experience with data modeling and building scalable pipelines in cloud environments.
- Knowledge of Azure, AWS, or GCP and their data ecosystem.
- Strong problem-solving, analytical, and communication skills.
Preferred Qualifications
- Experience with streaming data technologies (Kafka, Event Hubs, Kinesis).
- Knowledge of Delta Lake, Synapse, or Snowflake performance optimization .
- Familiarity with DevOps practices for data (CI/CD, Git, Infrastructure as Code).
- Exposure to machine learning pipelines or advanced analytics.
- Understanding of data governance, lineage, and compliance frameworks
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