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Sr Machine Learning Engineer

Amgen

Sr Machine Learning Engineer

full-timePosted: Aug 3, 2026Updated: Aug 28, 2026India - Hyderabad

Job Description

Career CategoryManufacturingJob DescriptionSr Machine Learning Engineer ABOUT AMGEN Amgen harnesses the best of biology and technology to fight the world’s toughest diseases, making people’s lives easier, fuller, and longer. We discover, develop, manufacture, and deliver innovative medicines to help millions of patients. Amgen helped establish the biotechnology industry more than 40 years ago and remains on the cutting edge of innovation, using technology and human genetic data to push beyond what’s known today. ABOUT THE ROLE Role Description: Let’s do this. Let’s change the world. We are looking for a highly motivated expert Data Engineer to design and develop scalable, secure, and reliable data pipelines and ingestion solutions that power knowledge layers and assistant experiences via generative AI solutions for our Manufacturing Applications Product Team. The ideal candidate will be responsible for designing, developing, and optimizing data pipelines, data integration frameworks, and metadata-driven architectures that enable seamless data access and analytics for Manufacturing and Operations use cases. This role requires deep expertise in big data processing, distributed computing, data modeling, LLMs, vector stores, productized assistant workflows. and governance frameworks to support self-service analytics, AI-driven insights, and enterprise-wide data management. Roles & Responsibilities Design, develop, and maintain complex ETL/ELT data pipelines in Databricks using PySpark, Scala, and SQL to process large-scale datasets. Champion ML/LLM feature engineering including data ingestion, embeddings/vector DBs, RAG/LLM serving, latency optimization, and knowledge graph/metadata. Build highly efficient data pipelines to migrate and deploy complex data across systems, with an understanding of biotech/pharma/manufacturing or related domains. Design and implement solutions to enable secure access, logging, privacy controls. unified data access, governance, and interoperability across hybrid cloud environments. Ingest and transform structured and unstructured data from databases (PostgreSQL, MySQL, SQL Server, MongoDB, etc.), APIs, logs, event streams, images, PDFs, and third-party platforms. Ensure data integrity, accuracy, and consistency through rigorous quality checks and monitoring. Innovate, explore, and implement new tools and technologies to enhance efficient data processing. Proactively identify and implement opportunities to automate tasks and develop reusable frameworks. Work in an Agile and Scaled Agile (SAFe) environment, collaborating with cross-functional teams, product owners, and Scrum Masters to deliver incremental value. Use JIRA, Confluence, and Agile DevOps tools to manage sprints, backlogs, and user stories. Support continuous improvement, test automation, and DevOps practices in the data engineering lifecycle. Collaborate and communicate effectively with product teams and cross-functional teams to understand business requirements and translate them into technical solutions. Must-Have Skills Hands-on experience in data engineering technologies such as Databricks, PySpark, SparkSQL, Apache Spark, AWS, Python, SQL, and Scaled Agile methodologies. Proficiency in workflow orchestration and performance tuning on big data processing. Strong understanding of AWS services. Ability to quickly learn, adapt, and apply new technologies. Strong problem-solving and analytical skills. Excellent communication and teamwork skills. Experience with Scaled Agile Framework (SAFe), Agile delivery practices, and DevOps practices. Experience with streaming technologies such as Apache Kafka, Debezium, or similar platforms for real-time data processing and integration. Good-to-Have Skills Experience with AI assisted code development using tools like GitHub Copilot, Cursor, Claude Code. Collaboration with ML engineers, prompt engineers, Product Managers and Owners. Data engineering experience in biotechnology or pharma industry. Experience in writing APIs to make data available to consumers. Experience with SQL/NoSQL databases, vector databases for large language models. Experience with data modeling and performance tuning for both OLAP and OLTP databases. Experience with software engineering best practices, including version control (Git, Subversion, etc.), CI/CD (Jenkins, Maven, etc.), automated unit testing, and DevOps. Experience with manufacturing related data sources like SCADA, Data Historian is a plus Education and Professional Certifications Doctorate Degree OR Master’s degree with 4 - 6 years of experience in Computer Science, IT or related field OR Bachelor’s degree with 6 - 8 years of experience in Computer Science, IT or related field Soft Skills Excellent analytical and troubleshooting skills. Strong verbal and written communication skills. Ability to work effectively with global, virtual teams. High degree of initiative and self-motivation. Ability to manage multiple priorities successfully. Team-oriented, with a focus on achieving team goals. Ability to learn quickly, be organized, and detail-oriented. Ready to Apply for the Job? We highly recommend utilizing Workday's robust Career Profile feature to complete the application process. A link to update your profile is available when you click Apply. You can then complete your Workday profile in minutes with the “Upload My Experience” functionality to upload an updated copy of your resume or you can simply edit the individual sections of your Career Profile. Please note that you should be in your current position for at least 18 months before applying to internal positions. Staff must notify their current manager if invited for an interview. In addition, Staff are ineligible to apply for open positions if (a) their performance is currently being managed on a performance improvement plan (PIP) or other locally utilized formal coaching document or (b) their most recent performance rating was not a “Partially Meets Expectations” or higher. Please visit our Internal Transfer Guidelines for more detailed information .

Locations

  • India - Hyderabad

Skills Required

  • biotechnologyintermediate
  • writing APIs to make data available to consumersintermediate
  • SQL/NoSQL databasesintermediate
  • data modelingintermediate
  • software engineering best practicesintermediate
  • manufacturing related data sources like SCADAintermediate

Preferred Qualifications

  • Experience with AI assisted code development using tools like GitHub Copilot, Cursor, Claude Code. (experience)
  • Experience with AI assisted code development using tools like GitHub Copilot, Cursor, Claude Code. (experience)
  • Collaboration with ML engineers, prompt engineers, Product Managers and Owners. (experience)
  • Collaboration with ML engineers, prompt engineers, Product Managers and Owners. (experience)
  • Data engineering experience in biotechnology or pharma industry. (experience)
  • Data engineering experience in biotechnology or pharma industry. (experience)
  • Experience in writing APIs to make data available to consumers. (experience)
  • Experience in writing APIs to make data available to consumers. (experience)
  • Experience with SQL/NoSQL databases, vector databases for large language models. (experience)
  • Experience with SQL/NoSQL databases, vector databases for large language models. (experience)
  • Experience with data modeling and performance tuning for both OLAP and OLTP databases. (experience)
  • Experience with data modeling and performance tuning for both OLAP and OLTP databases. (experience)
  • Experience with software engineering best practices, including version control (Git, Subversion, etc.), CI/CD (Jenkins, Maven, etc.), automated unit testing, and DevOps. (experience)
  • Experience with software engineering best practices, including version control (Git, Subversion, etc.), CI/CD (Jenkins, Maven, etc.), automated unit testing, and DevOps. (experience)
  • Experience with manufacturing related data sources like SCADA, Data Historian is a plus (experience)
  • Experience with manufacturing related data sources like SCADA, Data Historian is a plus (experience)

Responsibilities

  • Design, develop, and maintain complex ETL/ELT data pipelines in Databricks using PySpark, Scala, and SQL to process large-scale datasets.
  • Design, develop, and maintain complex ETL/ELT data pipelines in Databricks using PySpark, Scala, and SQL to process large-scale datasets.
  • Champion ML/LLM feature engineering including data ingestion, embeddings/vector DBs, RAG/LLM serving, latency optimization, and knowledge graph/metadata.
  • Champion ML/LLM feature engineering including data ingestion, embeddings/vector DBs, RAG/LLM serving, latency optimization, and knowledge graph/metadata.
  • Build highly efficient data pipelines to migrate and deploy complex data across systems, with an understanding of biotech/pharma/manufacturing or related domains.
  • Build highly efficient data pipelines to migrate and deploy complex data across systems, with an understanding of biotech/pharma/manufacturing or related domains.
  • Design and implement solutions to enable secure access, logging, privacy controls. unified data access, governance, and interoperability across hybrid cloud environments.
  • Design and implement solutions to enable secure access, logging, privacy controls. unified data access, governance, and interoperability across hybrid cloud environments.
  • Ingest and transform structured and unstructured data from databases (PostgreSQL, MySQL, SQL Server, MongoDB, etc.), APIs, logs, event streams, images, PDFs, and third-party platforms.
  • Ingest and transform structured and unstructured data from databases (PostgreSQL, MySQL, SQL Server, MongoDB, etc.), APIs, logs, event streams, images, PDFs, and third-party platforms.
  • Ensure data integrity, accuracy, and consistency through rigorous quality checks and monitoring.
  • Ensure data integrity, accuracy, and consistency through rigorous quality checks and monitoring.
  • Innovate, explore, and implement new tools and technologies to enhance efficient data processing.
  • Innovate, explore, and implement new tools and technologies to enhance efficient data processing.
  • Proactively identify and implement opportunities to automate tasks and develop reusable frameworks.
  • Proactively identify and implement opportunities to automate tasks and develop reusable frameworks.
  • Work in an Agile and Scaled Agile (SAFe) environment, collaborating with cross-functional teams, product owners, and Scrum Masters to deliver incremental value.
  • Work in an Agile and Scaled Agile (SAFe) environment, collaborating with cross-functional teams, product owners, and Scrum Masters to deliver incremental value.
  • Use JIRA, Confluence, and Agile DevOps tools to manage sprints, backlogs, and user stories.
  • Use JIRA, Confluence, and Agile DevOps tools to manage sprints, backlogs, and user stories.
  • Support continuous improvement, test automation, and DevOps practices in the data engineering lifecycle.
  • Support continuous improvement, test automation, and DevOps practices in the data engineering lifecycle.
  • Collaborate and communicate effectively with product teams and cross-functional teams to understand business requirements and translate them into technical solutions.
  • Collaborate and communicate effectively with product teams and cross-functional teams to understand business requirements and translate them into technical solutions.

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