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Sr Associate IS Engineer, Commercialization Technology

Amgen

Sr Associate IS Engineer, Commercialization Technology

full-timePosted: Jul 29, 2026Updated: Aug 28, 2026India - Hyderabad

Job Description

Career CategoryEngineeringJob DescriptionThe Sr Associate IS Engineer will be focused on data foundations and emerging AI technologies by assisting in designing, developing, and maintaining foundational data engineering solutions that meet business needs and ensuring the availability and performance of critical systems.You will be part of a team specifically focused on Amgen’s Commercialization business. Amgen is using fully integrated and best-in-class technologies, having various enterprise platforms such as AWS, Databricks, Salesforce, Planisware and Anaplan; enterprise collaboration platforms such as O365, SharePoint Online and MS Teams, as well as vertical-specific platforms in R&D, Operations, Process Development and Commercial/Marketing areas.The candidate should also have experience with large, diverse and globally dispersed teams within a matrixed organization. Extensive collaboration with global cross functional teams is required to ensure seamless integration and operational excellence. The ideal candidate will have a strong background in the end-to-end software development lifecycle, strong experience with data integration, and be a Scaled Agile practitioner.Roles & Responsibilities:Design, develop, and maintain data solutions for data generation, collection, and processing Be a key team member that assists in design and development of the data pipeline Create data pipelines and ensure data quality by implementing ETL processes to migrate and deploy data across systems Contribute to the design, development, and implementation of data pipelines, ETL/ELT processes, and data integration solutions Work with the team to troubleshoot and resolve technical issues. Identify and fix bugs and defectsDevelop and optimize data models, ETL processes, and workflows across structured and unstructured data sources.Take ownership of data pipeline projects from inception to deployment, manage scope, timelines, and risks Develop and maintain data models, data dictionaries, and other documentation to ensure data accuracy and consistency Implement data security and privacy measures to protect sensitive data Leverage cloud platforms (AWS preferred) to build scalable and efficient data solutions Collaborate and communicate effectively with product teams Collaborate with Architects, Business SMEs, and Data Scientists to design and develop end-to-end data pipelines to meet fast paced business needs across geographic regions Identify and resolve complex data-related challenges Adhere to best practices for coding, testing, and designing reusable code/component Explore new tools and technologies that will help to improve ETL platform performance Participate in sprint planning meetings and provide estimations on technical implementation Ensure data security, compliance, and role-based access control across data environments.Basic Qualifications: Master’s / Bachelor's degree and 5 to 8 years of Computer Science, IT or related field experience OR Must have Skills: Hands-on experience with data technologies and platforms, such as Databricks, Apache Spark (PySpark, SparkSQL), workflow orchestration, performance tuningProficiency in data analysis tools (eg. SQL) Solid understanding of data modeling, schema design and data pipeline orchestration.Experience with ETL tools such as Apache Spark, and various Python packages related to data processing, machine learning model development Strong understanding of data modeling, data warehousing, and data integration concepts Demonstrated ability to design, build, and test automation workflowsStrong understanding of web services, databases, and ETL conceptsEagerness to learn and grow in an engineering environmentAbility to work well within a team and communicate effectivelyWorking experience in Agile or Scrum methodologiesGood-to-Have Skills:Experience with Software engineering best-practices, including but not limited to version control, infrastructure-as-code, CI/CD, and automated testing Understanding of data governance frameworks, tools, and best practices. Knowledge of data protection regulations and compliance requirements (e.g., GDPR) Familiarity with vector databases for semantic search and embeddings-based retrieval.Exposure to knowledge graph technologies (e.g., Neo4j, AWS Neptune, RDF/SPARQL, graph data modeling).Experience working with Large Language Models (LLMs) or Generative AI systems, particularly in retrieval-augmented generation (RAG) or data augmentation contexts.Understanding of MLOps or DataOps principles, including CI/CD for data workflows.Ability to collaborate in cross-functional teams and communicate complex technical concepts clearlyCertifications related to Agile or any software or cloud platform are advantageousExperience with automation tools or platforms (e.g. Microsoft Power Automate, UiPath, PowerShell, or similar)Soft Skills:Excellent analytical and troubleshooting skillsComfortable to work effectively with global, virtual teamsHigh degree of initiative and self-motivation.

Locations

  • India - Hyderabad

Skills Required

  • Software engineering best-practicesintermediate
  • data protection regulationsintermediate
  • vector databases for semantic searchintermediate
  • automation toolsintermediate

Required Qualifications

  • Master’s / Bachelor's degree and 5 to 8 years of Computer Science, IT or related field experience OR (experience, 8 years)

Preferred Qualifications

  • Experience with Software engineering best-practices, including but not limited to version control, infrastructure-as-code, CI/CD, and automated testing (experience)
  • Understanding of data governance frameworks, tools, and best practices. (experience)
  • Knowledge of data protection regulations and compliance requirements (e.g., GDPR) (experience)
  • Familiarity with vector databases for semantic search and embeddings-based retrieval. (experience)
  • Exposure to knowledge graph technologies (e.g., Neo4j, AWS Neptune, RDF/SPARQL, graph data modeling). (experience)
  • Experience working with Large Language Models (LLMs) or Generative AI systems, particularly in retrieval-augmented generation (RAG) or data augmentation contexts. (experience)
  • Understanding of MLOps or DataOps principles, including CI/CD for data workflows. (experience)
  • Ability to collaborate in cross-functional teams and communicate complex technical concepts clearly (experience)
  • Certifications related to Agile or any software or cloud platform are advantageous (certification)
  • Experience with automation tools or platforms (e.g. Microsoft Power Automate, UiPath, PowerShell, or similar) (experience)

Responsibilities

  • Design, develop, and maintain data solutions for data generation, collection, and processing
  • Be a key team member that assists in design and development of the data pipeline
  • Create data pipelines and ensure data quality by implementing ETL processes to migrate and deploy data across systems
  • Contribute to the design, development, and implementation of data pipelines, ETL/ELT processes, and data integration solutions
  • Work with the team to troubleshoot and resolve technical issues. Identify and fix bugs and defects
  • Develop and optimize data models, ETL processes, and workflows across structured and unstructured data sources.
  • Take ownership of data pipeline projects from inception to deployment, manage scope, timelines, and risks
  • Develop and maintain data models, data dictionaries, and other documentation to ensure data accuracy and consistency
  • Implement data security and privacy measures to protect sensitive data
  • Leverage cloud platforms (AWS preferred) to build scalable and efficient data solutions
  • Collaborate and communicate effectively with product teams
  • Collaborate with Architects, Business SMEs, and Data Scientists to design and develop end-to-end data pipelines to meet fast paced business needs across geographic regions
  • Identify and resolve complex data-related challenges
  • Adhere to best practices for coding, testing, and designing reusable code/component
  • Explore new tools and technologies that will help to improve ETL platform performance
  • Participate in sprint planning meetings and provide estimations on technical implementation
  • Ensure data security, compliance, and role-based access control across data environments.

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