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open role · workday:amgen

Data Engineer

$AMGNHyderabad· posted Jun 22, 2026
IT & Engineering

Career Category Information Systems Job Description As a Data Engineer supporting Law data strategy, you will design, build, and maintain scalable data pipelines that integrate data from legal systems into Amgen’s enterprise data fabric. You will enable high-quality, governed datasets that support analytics, reporting, and emerging AI/ML use cases for Legal and Compliance teams. This role requires strong hands-on engineering skills, familiarity with modern data platforms (e.g., Databricks), and the ability to work closely with Legal stakeholders, Data Architects, and AI/Analytics teams.

Key Responsibilities Data Engineering & Pipeline Development

• Design, develop, and maintain data pipelines to ingest data from legal systems, third-party tools, and enterprise platforms

• Build and optimize ETL/ELT pipelines using modern frameworks (Databricks, Spark)

• Implement reliable, scalable, and production-ready data pipelines using engineering best practices, monitoring, and automated validation frameworks

• Integrate structured and unstructured legal data into the enterprise data fabric

• Ensure reliability, scalability, and performance of data pipelines

Databricks & Modern Data Platform

• Develop pipelines using Databricks (Delta Lake, Spark, notebooks)

• Implement data transformation and orchestration workflows

• Support migration and modernization of legacy data solutions to cloud-native platforms

• Contribute to reusable data engineering patterns and components

• Optimize Delta Lake and Spark workloads for scalable, cost-efficient, and high-performance enterprise data processing

Data Quality, Governance & Compliance

• Implement data quality checks, validation rules, and monitoring

• Implement governance, lineage, and security controls for sensitive legal and compliance datasets

• Ensure compliance with data governance, privacy, and legal/regulatory requirements (e.g., sensitive legal data handling)

• Maintain metadata, lineage, and documentation for legal datasets

AI & Advanced Analytics Enablement

• Build curated datasets that support AI/ML models and GenAI use cases

• Prepare structured and unstructured datasets for AI/ML and GenAI use cases including document intelligence and semantic search applications

• Enable feature engineering and data preparation for AI applications in Legal (e.g., document analysis, contract insights)

• Collaborate with data scientists and AI teams to ensure data readiness and accessibility

Collaboration & Delivery

• Work with Legal stakeholders to understand data needs and translate into technical solutions

• Partner with Data Architects to align with enterprise data fabric strategy

• Participate in Agile development processes (sprint planning, estimation, delivery)

• Document pipelines, models, and technical decisions

Basic Qualifications

• Master's or Bachelor’s degree in Computer Science, Engineering, Information Systems, or related field

• 5-8 years of experience in data engineering or related technical role

Must-Have Technical Skills

• Strong experience with SQL and relational databases

• Programming experience in Python (required), PySpark preferred

• Hands-on experience with Databricks / Apache Spark

• Experience building ETL/ELT pipelines for large-scale datasets

• Familiarity with cloud platforms (AWS, Azure, or GCP)

• Understanding of data modeling and data warehousing concepts

Preferred / Strategic Skills (Aligned to Future Data Strategy)

• Certification: • Relevant certifications in Databricks, cloud platforms (AWS/Azure/GCP), or modern data engineering technologies are a plus

• Experience with: • Delta Lake / Lakehouse architectures

• Data Fabric / Data Mesh concepts

• Snowflake, Redshift, or enterprise data warehouse platforms

• Familiarity with: • Streaming data (Kafka, event-driven pipelines)

• Data orchestration tools (Airflow, Databricks Workflows)

• Exposure to: • AI/ML data pipelines and feature engineering

• Unstructured data processing (documents, legal text)

• Understanding of: • Data governance frameworks and cataloging tools

• Security and privacy controls for sensitive data (legal/compliance)

Functional Skills

• Strong problem-solving and analytical thinking

• Ability to work with large, complex datasets

• Effective communication with both technical and non-technical stakeholders

• Ability to operate in a fast-paced Agile environment

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requirements

• Master's or Bachelor’s degree in Computer Science, Engineering, Information Systems, or related field • 5-8 years of experience in data engineering or related technical role Must-Have Technical Skills • Strong experience with SQL and relational databases • Programming experience in Python (required), PySpark preferred • Hands-on experience with Databricks / Apache Spark • Experience building ETL/ELT pipelines for large-scale datasets • Familiarity with cloud platforms (AWS, Azure, or GCP) • Understanding of data modeling and data warehousing concepts Preferred / Strategic Skills (Aligned to Future Data Strategy) • Certification: • Relevant certifications in Databricks, cloud platforms (AWS/Azure/GCP), or modern data engineering technologies are a plus • Experience with: • Delta Lake / Lakehouse architectures • Data Fabric / Data Mesh concepts • Snowflake, Redshift, or enterprise data warehouse platforms • Familiarity with: • Streaming data (Kafka, event-driven pipelines) • Data orchestration tools (Airflow, Databricks Workflows) • Exposure to: • AI/ML data pipelines and feature engineering • Unstructured data processing (documents, legal text) • Understanding of: • Data governance frameworks and cataloging tools • Security and privacy controls for sensitive data (legal/compliance) Functional Skills • Strong problem-solving and analytical thinking • Ability to work with large, complex datasets • Effective communication with both technical and non-technical stakeholders • Ability to operate in a fast-paced Agile environment .

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