Enterprise Context Architect
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This role defines the architecture and technical requirements for the context layer our AI depends on: what it can know, what it can trust, and what it is allowed to act on. You will shape the standards and approaches that make enterprise knowledge reliable, current, and permissions-aware, working across the enterprise on content and context architecture, retrieval and grounding, evaluation, semantic structure, permissions requirements, and prototyping, while domain experts remain accountable for the accuracy and stewardship of their content.
Responsibilities
Requirements
- 7+ years designing how information is structured, governed, owned, and maintained at enterprise scale, including at least 2 years supporting AI-enabled knowledge or retrieval systems.
- Direct experience preparing content for AI consumption, with working fluency in RAG, grounding, semantic chunking, embeddings, vector search, and citations.
- Hands-on experience with knowledge graphs, ontologies, or semantic models for machine-readable content.
- Practical experience evaluating retrieval and grounding quality, testing hypotheses, and building lightweight prototypes independently or with Engineering.
- Track record building federated operating models across functions outside direct reporting lines, including metadata standards or authoring frameworks adopted at scale.
- Demonstrated ability to influence senior stakeholders across Engineering, IT, Legal, Security, and business functions.
- Sound judgment in balancing centralized standards with domain-specific expertise and ownership.
Preferred Qualifications
Durable Skills
US Zone 1
This role is not available in Zone 1
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Enterprise Context Architect
Role Description
This role defines the architecture and technical requirements for the context layer our AI depends on: what it can know, what it can trust, and what it is allowed to act on. You will shape the standards and approaches that make enterprise knowledge reliable, current, and permissions-aware, working across the enterprise on content and context architecture, retrieval and grounding, evaluation, semantic structure, permissions requirements, and prototyping, while domain experts remain accountable for the accuracy and stewardship of their content.
Responsibilities
Requirements
- 7+ years designing how information is structured, governed, owned, and maintained at enterprise scale, including at least 2 years supporting AI-enabled knowledge or retrieval systems.
- Direct experience preparing content for AI consumption, with working fluency in RAG, grounding, semantic chunking, embeddings, vector search, and citations.
- Hands-on experience with knowledge graphs, ontologies, or semantic models for machine-readable content.
- Practical experience evaluating retrieval and grounding quality, testing hypotheses, and building lightweight prototypes independently or with Engineering.
- Track record building federated operating models across functions outside direct reporting lines, including metadata standards or authoring frameworks adopted at scale.
- Demonstrated ability to influence senior stakeholders across Engineering, IT, Legal, Security, and business functions.
- Sound judgment in balancing centralized standards with domain-specific expertise and ownership.
Preferred Qualifications
Durable Skills
US Zone 1
This role is not available in Zone 1
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