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Context Engineering Manager, Digital Transformation & Innovation

Posted in last 14 days
HYBRID
FULL TIME

United States

Salary context

Typical pay for US Engineering Manager Jobs roles: $145k–$237k (median $194k).

Based on 491 live listings with disclosed salary.

Dept: Generalist

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Description

Job Summary: The Context Engineering Manager serves as the context and knowledge lead for all DT&I product and process development, with primary emphasis on the knowledge, skill, and instruction infrastructure that AI systems and engineers consume. This role owns the design, governance, and continuous improvement of reusable skill libraries, agent-instruction standards (CLAUDE.md and equivalents), retrieval-grounding corpora, and domain-knowledge encodings that make AI-accelerated delivery reliable, repeatable, and audit-ready across the DT&I product portfolio. The role works in close coordination with the AI Engineering Manager and the Data & Analytics Lead to ensure assurance domain knowledge is captured as high-quality, governed, agent-consumable context. The Context Engineering Manager partners closely with the AI & Digital Innovation Delivery Lead and cross-functional teams to align context-engineering practices, knowledge standards, and product delivery with assurance service delivery objectives, firm policies, and security standards. Job Duties: Context Architecture & Knowledge Engineering - Designs and maintains the firm’s context infrastructure including hierarchical skill libraries (foundation and archetype layers) and agent-instruction standards (CLAUDE.md and equivalents) with defined inheritance, ownership, and versioning - Serves as the principal technical authority on prompt and context patterns, reusable scaffolding, and context-as-code discipline across the DT&I portfolio - Defines how assurance domain knowledge is captured, structured, and surfaced to AI systems, and codifies BDO methodology (AKB) into retrievable, governed knowledge - Evaluates and integrates emerging context-engineering tools, frameworks, and knowledge platforms to continuously improve grounding quality and developer enablement - Designs context evaluation, provenance tracking, and citation discipline to ensure traceable, trustworthy grounded outputs Retrieval & Grounding Engineering - Owns retrieval-corpus curation and grounding quality including source selection, chunking strategy, embeddings, and index design using Azure AI Search and vector stores - Designs and tunes retrieval pipelines (hybrid search, re-ranking, metadata filtering) for accuracy, cost, and latency across DT&I products - Establishes corpus lifecycle management including freshness, versioning, deduplication, and retirement of stale knowledge - Partners with the AI Engineering Manager to integrate grounded context into agent and application runtimes - Implements grounding evaluation, regression testing, and quality metrics for retrieval-augmented features Context Governance & Enablement - Governs the skill and context catalog as a managed asset with named ownership, review cadence, and change control consistent with the Advantage SDLC and Architecture Review Board - Provides governed context scaffolding and standards for the Advantage Forge citizen-engineer program and product teams - Coaches engineers on context-engineering practice and maintains documentation so AI-native development scales across the practice - Defines standards for token economics, context-window management, and prompt efficiency across the portfolio Risk Management - Ensures context infrastructure and grounded knowledge comply with firm security policies, privacy requirements, and regulatory standards (SOC 2, PCAOB AS 2201, QC 1000, ISO 27001) - Prevents sensitive or restricted data from entering prompts, corpora, or model context, and maintains auditability and traceability of grounded knowledge - Partners with risk and compliance stakeholders to maintain alignment between context infrastructure and firm governance requirements Performs other duties as assigned - Willingly accepts share of less desirable assignments Supervisory Responsibilities: - Acts as a direct supervisor to engineering and development team members, as assigned - Acts as a career advisor and mentor to engineering and development team members as assigned Qualifications, Knowledge, Skills, and Abilities: Education: - High School Diploma/GED, required - Bachelor’s degree with a focus in Computer Science, Information Systems, Engineering, Information Technology, preferred Experience: - Seven (7) or more years of experience in software, data, or AI engineering, or related technology fields, required - Three (3) or more years of experience building LLM context, retrieval-augmented generation (RAG), or knowledge-management systems, required - Two (2) or more years of experience defining reusable engineering assets, developer-enablement tooling, or technical standards, required - Experience extracting and codifying domain knowledge into machine-consumable formats, preferred - Experience delivering enterprise-scale AI or knowledge solutions in professional services, assurance, or accounting industries, preferred - Experience with context governance, prompt management, or AI evaluation frameworks, preferred License/Certifications: - Microsoft Certified: Azure AI Engineer Associate, or equivalent, preferred Technology: - Expert-level knowledge of Microsoft Azure AI services including Azure AI Foundry, Azure OpenAI, and Azure AI Search, required - Strong understanding of LLM context windows, prompting, retrieval, and grounding, and how each affects accuracy, cost, and reliability, required - Experience with retrieval and vector technologies (Azure AI Search, embeddings, hybrid search, re-ranking), required - Extensive knowledge of agent-instruction and skill systems (CLAUDE.md and equivalents) and Markdown-based knowledge structures, required - Experience with agentic development tooling (Claude Code or equivalent) and Git-based workflows, preferred - Experience with .NET/C# and/or Python for context and evaluation tooling, preferred - Experience with AI evaluation and observability tooling, preferred Knowledge, Skills, & Abilities: - Expert-level knowledge of context engineering, retrieval design, and grounding for production LLM systems - Proven ability to serve as a hands-on context architect while providing standards, governance, and team enablement - Deep knowledge of information architecture and the ability to translate subject-matter expertise into machine-consumable knowledge - Familiarity with AI application and agent runtimes and the ability to collaborate with engineering teams on context dependencies - Excellent problem-solving skills with a focus on accuracy, reliability, and grounding quality - Strong communication skills with the ability to convey technical concepts to non-technical stakeholders and leadership - Experience presenting context and AI governance recommendations to governance bodies (e.g., Architecture Review Boards) - Strong knowledge of data privacy, security, and compliance considerations for AI and knowledge systems - Ability to work across technical teams and business stakeholders in complex, fast-paced enterprise environments - Self-directed with the ability to manage multiple priorities and competing deadlines - Collaborative mindset with the ability to build relationships across all levels of the organization - Ability to travel up to 10%, no relocation required Individual salaries that are offered to a candidate are determined after consideration of numerous factors including but not limited to the candidate’s qualifications, experience, skills, and geography. National Range: $125,000 - $155,000 Maryland Range: $125,000 - $155,000 NYC/Long Island/Westchester Range: $125,000 - $155,000
ATS: oracle hcmPosted: Aug 24, 2026Updated: Aug 25, 2026View original posting

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Context Engineering Manager, Digital Transformation & Innovation

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