Role at a glance
- Job function
-
AI & Data Data Engineering
- Salary
- Not Disclosed
- Location
- Pune Maharashtra India
- Work arrangement
- Hybrid
- Employment
- Full-time
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Role Summary
The C12 Data Engineer serves as a subject matter expert responsible for scalable batch and real-time data pipelines using Python, PySpark, Spark SQL, and Databricks. The role supports cloud infrastructure, data quality and governance, CI/CD, machine learning operationalization, and reporting-focused semantic layers while providing technical leadership and mentorship.
What You'll Do
- Design, develop, and deploy scalable batch and real-time ETL/ELT data pipelines.
- Deploy and maintain Databricks workspaces on AWS or GCP and manage secure cloud integrations.
- Diagnose Spark, SQL, and Databricks performance bottlenecks and optimize Delta Lake storage layouts.
- Implement automated data validation, data quality monitoring, and metadata management using Unity Catalog.
- Establish CI/CD pipelines for dbt, Spark jobs, and Databricks workflows.
- Lead peer code reviews, enforce coding standards, mentor data engineers, and partner with Data Science and business intelligence teams.
Generated from the employer's posting. Verify important details before applying.
View full postingQualifications
Strong, production-grade proficiency in Python and advanced SQL; deep hands-on experience with Apache Spark (PySpark); expert knowledge of Delta Lake, Delta Live Tables, Unity Catalog, and Databricks Workflows; extensive experience deploying Databricks on AWS or GCP; understanding of dimensional modeling, SCDs, and Medallion architecture.
Required
- Python, including standard libraries, pandas, and pytest
- Advanced SQL, including window functions, CTEs, and query optimization
- Apache Spark (PySpark) for multi-terabyte distributed processing
- Minimum 3 years of hands-on Databricks development
- Delta Lake ACID transactions, Delta Live Tables, Unity Catalog, and Databricks Workflows
- AWS or GCP Databricks deployment
- Cloud-native components including S3, EC2, IAM, EMR, Athena, and Redshift, or GCS, Compute Engine, IAM, Dataproc, and BigQuery
- Dimensional modeling, Star and Snowflake schemas, SCDs, and Medallion architecture
Preferred
- Databricks Certified Data Engineer Professional
- Databricks Certified Associate Developer for Apache Spark
- AWS Certified Solutions Architect
- AWS Certified Data Engineer
- Google Cloud Professional Data Engineer
Original job description
Content provided by the employer
Original job description
Content provided by the employer
The Job description is given below -
A C12 Data Engineer is expected to:
- Act as a Subject Matter Expert (SME): Provide technical guidance on pipeline architecture, distributed computing, and cloud-native integrations.
- Drive Best Practices: Champion code quality, comprehensive automated testing, CI/CD automation, and rigorous data governance standards.
Key Responsibilities
- Data Pipeline Architecture & Development: Design, develop, and deploy scalable batch and real-time end-to-end data pipelines (ETL/ELT) using Python, PySpark, Spark SQL, and Databricks(Must have).
- Cloud Infrastructure Integration: Deploy and maintain Databricks workspaces on cloud environments (AWS or GCP). Manage secure integrations with cloud storage (S3/GCS), access controls (IAM), secrets management (Vault/KMS), and serverless query engines.
- Performance Optimization & Tuning: Diagnose and resolve performance bottlenecks in Spark clusters, SQL queries, and Databricks jobs. Optimize storage layouts using Delta Lake properties (e.g., Z-Ordering, partitioning, and vacuuming).
- Data Quality & Governance: Implement automated data validation frameworks, data quality monitoring, and metadata management solutions utilizing Databricks Unity Catalog to ensure strict compliance with internal data governance policies and external financial regulations (such as BCBS 239).
- Technical Leadership & Mentorship: Act as a technical lead within an Agile/Scrum environment. Lead peer code reviews, enforce coding standards, and mentor junior and mid-level data engineers (C10/C11).
- DevOps & CI/CD: Establish and maintain automated CI/CD pipelines (using Jenkins, GitLab, or GitHub Actions) for packaging and deploying data engineering artifacts (dbt, Spark jobs, Databricks workflows).
- Collaboration: Partner with Data Science teams to operationalize machine learning models, and work with business intelligence developers to build efficient semantic layers for reporting.
Technical Qualifications (Must-Haves)
- Programming Languages: Strong, production-grade proficiency in Python (including standard libraries, pandas, and testing frameworks like pytest) and advanced SQL (including window functions, CTEs, and query optimization).
- Distributed Computing: Deep hands-on experience with Apache Spark (PySpark) for processing multi-terabyte datasets in a distributed cluster environment.
- Unified Lakehouse Platforms: Minimum 3 years of hands-on experience developing within Databricks. Expert knowledge of Delta Lake ACID transactions, Delta Live Tables (DLT), Unity Catalog, and Databricks Workflows is required.
- Cloud Platforms: Extensive experience deploying Databricks within either Amazon Web Services (AWS) or Google Cloud Platform (GCP). Proficiency in cloud-native components (AWS S3, EC2, IAM, EMR, Athena, Redshift OR GCP GCS, Compute Engine, IAM, Dataproc, BigQuery) is a strict requirement.
- Data Modeling: Solid understanding of data warehousing concepts, including dimensional modeling (Star and Snowflake schemas), slow-changing dimensions (SCDs), and Medallion (Bronze/Silver/Gold) architecture design.
Preferred Qualifications & Certifications
- Databricks Certifications: Databricks Certified Data Engineer Professional or Databricks Certified Associate Developer for Apache Spark.
- Cloud Certifications: AWS Certified Solutions Architect / AWS Certified Data Engineer, or Google Cloud Professional Data Engineer.
Professional Competencies & Soft Skills
- Problem-Solving: Exceptional analytical and troubleshooting skills to resolve complex performance and data consistency issues in distributed systems.
- Communication: Excellent verbal and written communication skills. Ability to articulate complex technical architectures to non-technical business stakeholders.
- Collaborative Mindset: Proactive team player who thrives in a diverse, global, cross-functional engineering environment.
- Adaptability: Ability to prioritize work, pivot quickly in response to changing business requirements, and master new technologies as they emerge.
Thanks !
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Job Family:
Applications Development------------------------------------------------------
Time Type:
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Most Relevant Skills
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Other Relevant Skills
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About the company
Citi
Large Enterprise
Citi is a global financial services corporation that offers a wide range of financial products and services, including consumer banking, credit, investment banking, and wealth management. With a presence in nearly 100 countries, Citi serves millions of customers, from individuals and small businesses to large corporations and governments. The company is dedicated to innovation and sustainability, actively working to support economic growth while addressing environmental and social challenges. Citi’s commitment to providing exceptional service and fostering diverse talent makes it a prominent choice for students aspiring to build a career in finance and banking.