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Senior/Lead Data Engineer - Azure Ecosystem

Sophus IT Solutions United State
This Job is No Longer Active This position is no longer accepting applications
AI Summary

Seeking an experienced Senior/Lead Data Engineer with 8+ years of expertise in designing and delivering scalable data solutions on Azure. Focus on Databricks, Spark, modern data lakehouse architectures, and both batch/real-time data processing. Responsibilities include end-to-end data engineering, architectural influence, and ensuring high-quality data pipelines.

Key Highlights
Design and implement scalable data platforms and pipelines on Azure and Databricks.
Develop and optimize data ingestion, transformation, and processing workflows.
Lead ETL/ELT pipeline development, data modeling, and enforce data governance best practices.
Technical Skills Required
Azure Databricks Spark Python SQL Delta Lake ADLS Azure Functions Azure Data Factory Kafka Event Hub PostgreSQL
Benefits & Perks
Relocation is also fine.

Job Description


Hi,


Please review the below JD:


Role: Sr./Lead Data Engineer

Location: Atlanta GA Onsite


Relocation is also fine.


We are looking for an experienced Senior/Lead Data Engineer with 8+ years of expertise in designing and delivering scalable, high-performing data solutions on the Azure ecosystem. The ideal candidate will have deep hands-on experience with Databricks, Spark, modern data lakehouse architectures, data modelling, and both batch and real-time data processing. You will be responsible for driving end-to-end data engineering initiatives, influencing architectural decisions, and ensuring robust, high-quality data pipelines.


The Opportunity:

· Architect, design, and implement scalable data platforms and pipelines on Azure and Databricks.

· Build and optimize data ingestion, transformation, and processing workflows across batch and real-time data streams.

· Work extensively with ADLS, Delta Lake, and Spark (Python) for large-scale data engineering.

· Lead the development of complex ETL/ELT pipelines, ensuring high quality, reliability, and performance.

· Design and implement data models, including conceptual, logical, and physical models for analytics and operational workloads.

· Work with relational and lakehouse systems including PostgreSQL and Delta Lake.

· Define and enforce best practices in data governance, data quality, security, and architecture.

· Collaborate with architects, data scientists, analysts, and business teams to translate requirements into technical solutions.

· Troubleshoot production issues, optimize performance, and support continuous improvement of the data platform.

· Mentor junior engineers and contribute to building engineering standards and reusable components.


This position description identifies the responsibilities and tasks typically associated with the performance of the position. Other relevant essential functions may be required.


What You Need:

· 8+ years of hands-on data engineering experience in enterprise environments.

· Strong expertise in Azure services, especially Azure Databricks, Functions, and Azure Data Factory (preferred).

· Advanced proficiency in Apache Spark with Python (PySpark).

· Strong command over SQL, query optimization, and performance tuning.

· Deep understanding of ETL/ELT methodologies, data pipelines, and scheduling/orchestration.

· Hands-on experience with Delta Lake (ACID transactions, optimization, schema evolution).

· Strong experience in data modelling (normalized, dimensional, lakehouse modelling).

· Experience in both batch processing and real-time/streaming data (Kafka, Event Hub, or similar).

· Solid understanding of data architecture principles, distributed systems, and cloud-native design patterns.

· Ability to design end-to-end solutions, evaluate trade-offs, and recommend best-fit architectures.

· Strong analytical, problem-solving, and communication skills.

· Ability to collaborate with cross-functional teams and lead technical discussions.


Preferred Skills:

· Experience with CI/CD tools such as Azure DevOps and Git.

· Familiarity with IaC tools (Terraform, ARM).

· Exposure to data governance and cataloging tools (Azure Purview).

· Experience supporting machine learning or BI workloads on Databricks.


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