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Salary
$26k – $51k per year (Estimated)
Location
In office (Hyderabad)
Seniority
Staff · 8+ years exp
Employment
Full-Time
Overview
Company
Impact
Profile match
Amgen is a global biopharmaceutical pioneer headquartered in Thousand Oaks, California, that specializes in discovering, developing, and manufacturing innovative biologic therapies. The company focuses on treating serious illnesses with high unmet medical needs across key areas including oncology, cardiovascular disease, inflammation, rare diseases, and nephrology. Leveraging advanced human genetics, molecular engineering, and biosimilar development, it serves millions of patients worldwide through established blockbuster treatments and cutting-edge pipelines.

Career Category

Information Systems

Job Description

ABOUT AMGEN

Amgen harnesses the best of biology and technology to fight the world’s toughest diseases, and make 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:

Amgen is seeking an experienced Reference Data Governance specialist to support enterprise semantic data, ontology, taxonomy, and knowledge graph initiatives across business and scientific domains.

The professional will work closely with business SMEs, data stewards, data architects, governance teams, and technology partners to define, standardize, govern, and publish reference data across enterprise platforms. As a member of the Reference Data Product team within the Data Foundations & Governance organization, you will be responsible for managing the end-to-end reference data lifecycle, promoting reuse of governed reference data, supporting semantic interoperability, and enabling enterprise-wide adoption of controlled vocabularies, taxonomies, ontologies, and metadata standards.

Roles & Responsibilities:

  • Design, build, maintain, and govern enterprise reference data models, controlled vocabularies, taxonomies, ontologies, and semantic data assets
  • Contribute towards defining Reference data management framework for Enterprise
  • Manage the reference data lifecycle including intake, assessment, standardization, approval, stewardship, versioning, publishing, monitoring, and retirement.
  • Partner with business SMEs, data owners, data stewards, and governance councils to define reference data standards, ownership, stewardship rules, and usage guidelines.
  • Define and operationalize federated governance model for Reference Data
  • Define, manage and govern enterprise reference data products and the reference data within the knowledge layer
  • Support enterprise reference data governance processes, including data quality rules, issue management, change management, lineage, impact assessment, and compliance tracking.
  • Apply FAIR Data Principles to ensure reference data is findable, accessible, interoperable, and reusable across business and scientific domains.
  • Develop and optimize RDF/OWL/SKOS-based semantic frameworks and SPARQL/SQL queries.
  • Support semantic data integration, metadata harmonization, and semantic publishing workflows.
  • Manage ontology lifecycle activities including modeling, validation, versioning, and publishing.
  • Collaborate with multiple enterprise & functional teams to elicit, structure and formalize knowledge from domain experts and diverse sources to build CVs, taxonomies, and ontologies.
  • Troubleshoot semantic data load and mapping issues across Semantic Layer, CDL, and graph platforms.
  • Identify and resolve complex reference data, metadata, semantic interoperability, and governance-related challenges.
  • Support enterprise Data Foundations, Knowledge Graph and Metadata Management initiatives.
  • Participate in sprint planning meetings and provide estimations on technical implementation.

Basic Qualifications and Experience:

  • Master’s degree with 7- 10 years of experience in Business, Engineering, IT or related field OR
  • Bachelor’s degree with 8 - 12 years of experience in Business, Engineering, IT or related field OR

Functional Skills:

Must-Have Skills:

  • Mandatory: 8-12 years of experience in Reference Data Management, Data Governance, Semantic Technologies, or Knowledge Graph implementations.
  • Strong experience in enterprise reference data governance, including stewardship workflows, ownership models, approval processes, data quality management, versioning, and publishing.
  • Advanced understanding of reference data lifecycle management across enterprise, clinical, regulatory, commercial, research, and scientific domains.
  • Advanced knowledge of ontologies and taxonomies with proficiency in Semantic Web technologies, standards and tools such as RDF/s, OWL, SKOS, SPARQL, SHACL, and Linked Data standards.
  • Hands-on experience with GraphDBs, TopBraid EDG, CenTree, MarkLogic, Stardog, or similar semantic platforms.
  • Working knowledge of FAIR Data Principles and experience applying FAIR concepts to reference data, metadata, controlled vocabularies, taxonomies, or ontologies.
  • Strong expertise in Pharma Domain CVs/Taxonomies/Ontologies such as CDISC, MedDRA, WHODrug, NCIT, IDMP SPOR, SNOMED CT, ICD 10/11 etc. and integrating them into enterprise-wide applications.
  • Strong understanding of metadata management, reference data governance, and semantic interoperability.
  • Hands-on experience with modern data platforms such as Databricks and cloud engineering platforms such as AWS.
  • Strong analytical, troubleshooting, and stakeholder management skills.
  • Exposure to enterprise knowledge graph and AI/ML initiatives.
  • Experience working in Agile delivery models and cloud-based ecosystems.

Technical Skills:

  • Semantic Technologies: RDF, OWL, SKOS, SPARQL, SHACL, Linked Data, JSON-LD
  • Platforms & Tools: GraphDB, TopBraid, CenTree, MarkLogic, Protégé, Semaphore, Databricks
  • Data & Integration: SQL, PySpark, ETL, Git, REST APIs, XML, JSON,
  • Data Governance: Metadata management, Data stewardship workflows, Controlled vocabulary governance, Data lineage, Data quality rules and validation

Professional Certifications:

  • Databricks Certificate preferred
  • SAFe® Practitioner Certificate preferred
  • Any Data Analysis certification (SQL, Python)
  • Data Governance, Data Management, or Data Stewardship certification or semantic technology-related certification, where applicable

Soft Skills:

  • Strong analytical abilities to assess and improve master data processes and solutions.
  • Excellent verbal and written communication skills, with the ability to convey complex data concepts clearly to technical and non-technical stakeholders.
  • Effective problem-solving skills to address data-related issues and implement scalable solutions.
  • Ability to work effectively with global, virtual teams

EQUAL OPPORTUNITY STATEMENT

Amgen is an Equal Opportunity employer and will consider you without regard to your race, color, religion, sex, sexual orientation, gender identity, national origin, protected veteran status, or disability status.

We will ensure that individuals with disabilities are provided with reasonable accommodation to participate in the job application or interview process, to perform essential job functions, and to receive other benefits and privileges of employment. Please contact us to request accommodation.

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