Senior Data Engineer

CloudBoson

Dadri

On-site

INR 1,800,000 - 3,200,000

Full time

3 days ago
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Qualifications

  • Minimum 5 years of data engineering experience.
  • Strong SQL with joins, window functions, and query optimization.
  • Proficient in Python and PySpark on Azure Databricks.
  • Experience with Spark Structured Streaming for real-time data processing.
  • Ingest data from APIs to Azure Data Lake / BigQuery.
  • Multi-cloud familiarity: GCP and Azure.
  • Experience with Looker Studio for BI.
  • Git version control and CI/CD practices.
  • REST API integration and error handling.
  • Ability to mentor engineers and lead code reviews.

Responsibilities

  • Design, build, and optimize ETL/ELT pipelines using PySpark on Azure Databricks.
  • Develop real-time ingestion pipelines using Spark Structured Streaming and Azure Event Hubs.
  • Develop and tune complex SQL models in BigQuery for analytics and reporting.
  • Build ingestion pipelines from APIs and third-party sources into Azure Data Lake / BigQuery.
  • Implement incremental loads, CDC, and MERGE/upsert patterns for large datasets.
  • Experience on data lake/warehouse solutions across GCP and Azure.
  • Build dashboards and reporting layers in Looker Studio.
  • Lead code reviews, mentor engineers, and drive Git-based CI/CD practices for data pipelines.
  • Partner with product/business teams to translate requirements into scalable data models.
  • Optimize cost & performance of already running queries.
  • Carefully plan and implement data load requirements.
  • Regular monitoring of the data pipelines and systems and maintains the uptime of the overall data availability.
  • Co-ordinate with stake holders and provide relevant data and business insights.

Skills

5+ years exp
SQL proficiency
Python & PySpark
Spark Structured Streaming
Azure Event Hubs
BigQuery
Multi-cloud (GCP + Azure)
Looker Studio
Git version control
REST API integration

Tools

Azure Databricks
ADLS Gen2
Databricks Workflows
Airflow
Azure Storage Tables

Job description

Role & responsibilities
  • Design, build, and optimize ETL/ELT pipelines using PySpark on Azure Databricks.
  • Develop real-time and near-real-time ingestion pipelines using Spark Structured Streaming and Azure Event Hubs
  • Develop and tune complex SQL models in BigQuery for analytics and reporting
  • Build ingestion pipelines from APIs and third-party sources into Azure Data Lake / BigQuery
  • Implement incremental loads, CDC, and MERGE/upsert patterns for large datasets.
  • Experience on data lake/warehouse solutions across GCP and Azure
  • Build dashboards and reporting layers in Looker Studio
  • Lead code reviews, mentor engineers, and drive Git-based CI/CD practices for data pipelines
  • Partner with product/business teams to translate requirements into scalable data models
  • Optimize cost & performance of already running queries
  • Carefully plan and implement data load requirement.
  • Regular monitoring of the data pipelines and systems and maintains the uptime of the overall data availability.
  • Co-ordinate with stake holders and provide relevant data and business insights.
Required Skills:
  • 5+ years in data engineering
  • Strong SQL (joins, window functions, query optimization)
  • Well versed in Python and PySpark (Azure Databricks)
  • Spark Structured Streaming for real-time data processing
  • Azure Event Hubs for event ingestion and streaming architecture
  • BigQuery , AWS DynamoDB, Azure Storage Tables, Azure SQL, Azure Event Hub.
  • Azure Data Lake (ADLS Gen2)
  • Multi-cloud experience: GCP + Azure
  • Looker Studio for BI/reporting
  • Git version control
  • REST API integration (auth, pagination, error handling)
Good to have:
  • Orchestration tools (Airflow, Databricks Workflows)
  • Data quality/governance frameworks
  • Cloud cost optimization experience
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