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Ontology Engineer- Graph & Identity

Job in San Francisco, San Francisco County, California, 94199, USA
Listing for: Samba TV
Full Time position
Listed on 2026-09-09
Job specializations:
  • Software Development
    Data Engineering
Salary/Wage Range or Industry Benchmark: 120000 - 150000 USD Yearly USD 120000.00 150000.00 YEAR
Job Description & How to Apply Below
Position: Ontology Engineer-Knowledge Graph & Identity

Samba is a media intelligence company. We know what the world is watching, reading, and thinking about — in real time, at scale, across every screen. Our data exists with the consent of over a billion people, organized into the most complete picture of consumer attention ever built. The biggest brands in the world use that picture to make smarter decisions.

We think it’s the most interesting data asset on the planet, because it’s the most culturally relevant.

As an Ontology Engineer on Samba TV's Knowledge Graph & Identity team, you will build, maintain, and extend the knowledge graph schemas, derivation pipelines, and graph data models that underpin Samba's measurement and audience intelligence products. Working closely with the Senior Ontologist and peer data scientists, you will implement ontological frameworks in production, contribute to entity resolution and data enrichment pipelines, and help ensure the graph layer remains accurate, consistent, and production-ready.

This is a hands‑on technical role. You are expected to write clean, production-quality Python and SPARQL, take ownership of well‑scoped graph work streams, and grow your depth in semantic modeling under the guidance of senior team members.

This role reports to the Data Science Manager, Knowledge Graph & Identity.

What You'll Do:
Ontology Implementation & Validation
  • Implement and extend Samba's RDF/RDFS/OWL ontology schemas in the graph database - adding entity classes, properties, and constraints in a consistent, governed way under the direction of the Senior Ontologist
  • Build and maintain SHACL validation shapes for post‑load graph consistency checks; identify and triage data quality and schema violations
  • Support ontology versioning, change log documentation, and consistency checking across schema updates
  • Write efficient, well‑structured SPARQL queries and graph traversals to support downstream data science and product use cases
Event‑to‑Ontology Derivation Pipelines
  • Contribute to the event‑to‑ontology transformation and derivation layer - building PySpark/Databricks pipelines that aggregate raw TV viewership and web activity events into durable graph attributes (genre affinity, brand affinity, topic affinity, viewing summaries, lifecycle signals)
  • Implement derivation logic specified by the Senior Ontologist and data science team; validate outputs against SHACL shapes before graph load
  • Support incremental refresh and update logic aligned with the graph's batch refresh cadence
Technical Contribution
  • Write production‑quality Python - clean, well‑tested, documented, and reusable by teammates
  • Work with PySpark and Databricks to process and transform high‑volume data as part of graph pipeline development
  • Apply embedding‑based approaches (semantic similarity, vector search) to entity matching and ontology alignment tasks
  • Contribute to team tooling, documentation, and reusable components that improve knowledge graph development efficiency
Collaboration & Growth
  • Partner closely with data engineering on pipeline design, data quality, and incremental ingestion patterns feeding the materialised graph substrate
  • Participate in ontology design reviews and cross‑functional working groups
  • Work with product and operations teams to understand use case requirements and translate them into graph schema updates
  • Actively develop expertise in W3C semantic web standards, RDF‑native graph databases, and entity resolution under the guidance of the Senior Ontologist
Who You Are:
Must‑Haves
  • 2–4 years of hands‑on experience in knowledge graph development, semantic data modelling, ontology engineering, or a closely related field
  • Working knowledge of W3C semantic web standards: RDF, RDFS, OWL, and SPARQL - with practical experience querying or building in at least one triple store or graph database
  • Familiarity with SHACL or equivalent constraint and validation frameworks for graph data quality
  • Strong Python skills - clean, readable, production‑quality code with testing and documentation
  • Solid understanding of data modelling fundamentals - entity‑relationship design, taxonomies, hierarchies, and how to represent complex real‑world relationships in structured form
  • Familiarity with…
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