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Enterprise Context Architect

RemoteCanada only
Published
Experience
Senior
Employment
Full-time
Company size
Enterprise
CAD 129.2k–CAD 174.8k/yr
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No BS summary

Senior architect to own enterprise knowledge/context for AI at scale. Needs 7+ years structuring and governing information at enterprise scale and 2+ years applying that work to AI retrieval/grounding. Remote in Canada (Canada pay range listed).

Core skills

embeddingsvector searchknowledge graphs

Required skills

retrieval-augmented generationgroundingsemantic chunkingcitationsontologiessemantic modelsmetadata standardsauthoring frameworks

Optional skills

ServiceNowAtlassianMicrosoft 365Copilot SearchSlackNotionDITAKCS

What you'll do

  • Define the source-of-truth strategy for enterprise knowledge: which systems are authoritative, what is indexed centrally versus fetched live, what is eligible for AI use, and what is archived or excluded, informed by an assessment of the authoritative sources behind our highest-value workflows.
  • Define the enterprise standards that make content AI-ready across structure, metadata, provenance, and access, including where semantic models or knowledge graphs are warranted and where they are not, and translate them into authoring patterns adopted across domains.
  • Design the control model for AI actions, including eligibility rules, preconditions, approval boundaries, escalation paths, and rollback requirements, so systems that act on enterprise knowledge stay traceable and safe as AI capabilities evolve.
  • Lead platform and connector strategy across the content stack. Drive decisions on what is refactored, migrated, indexed in place, or consolidated, and partner with IT and Engineering on connector architecture and how AI systems are granted access to tools and sources.
  • Build the federated operating model for enterprise content: stewardship across functions, domains accountable for their own accuracy within shared standards, and lifecycle policies covering review cadence, expiration, material-change triggers, and retirement, tied to business criticality.
  • Define content quality in an AI context. Stand up retrieval and grounding evaluations for priority use cases, extend measurement to workflow traces and policy conformance as systems begin to act, and route findings back into the content lifecycle.
  • Co-own the criteria for AI content eligibility, sensitivity classification, and permissions modeling with Legal, Privacy, and Security, including access boundaries for the tools AI systems can reach.

What they require

  • 7+ years designing how information is structured, owned, and maintained at enterprise scale, including at least 2 years applying that work to AI retrieval and grounding.
  • Direct experience preparing content for AI consumption, with working fluency in retrieval-augmented generation, grounding, semantic chunking, embeddings, vector search, and citations.
  • Hands-on experience with knowledge graphs, ontologies, or semantic models that structure content for machine consumption.
  • Track record building federated operating models across functions outside direct reporting lines, with evidence of metadata standards or authoring frameworks adopted at scale.
  • Demonstrated ability to influence senior stakeholders across Engineering, IT, Legal, Security, and business functions.
  • Sound judgment on balancing central standards with domain expertise.

cloud storage and file synchronization service

🇺🇸 United StatesCloud StorageEnterprisedropbox.com/

What people say about this company

4.2/ 5

CAD 129.2k–CAD 174.8k/yr