Engagement Manager, AI Implementations

September 22, 2026
Application ends: December 21, 2026

Job Description

REQUIREMENTS

  • 5+ years of experience in program management, technical account management, or delivery roles within AI, data infrastructure, or complex technology environments.
  • Proven experience managing cross-functional implementations involving multiple stakeholders (internal teams, clients, external partners).
  • Strong ability to operate at the intersection of technical and business domains.

Technical Understanding

  • Familiarity with AI/ML deployment concepts, including model inference, edge/local AI, and distributed compute architectures.
  • Understanding of APIs, SDK integrations, and system architecture patterns.
  • Ability to engage in technical discussions with engineering teams while maintaining business-level clarity with clients.

Communication & Execution

  • Strong communication and stakeholder management skills, including experience working with enterprise or government entities.
  • Structured approach to project tracking, documentation, and governance.
  • Ability to manage ambiguity and operate in fast-evolving, early-stage environments.

Nice to Have

  • Experience with decentralized technologies, blockchain, or privacy-preserving systems.
  • Exposure to AI infrastructure tooling or MLOps workflows.
  • Experience in regulated industries or public sector projects.
  • Basic familiarity with programming or scripting environments (Python, APIs, CLI tools).

RESPONSIBILITES

Client & Partner Engagement

  • Act as the primary point of contact for clients and partners during AI implementation initiatives, ensuring clear communication, expectation alignment, and structured execution.
  • Guide clients in translating business requirements into AI deployment strategies leveraging QVAC capabilities (local inference, delegated compute, privacy-preserving architectures).
  • Support Expansion team in shaping AI-related opportunities by providing input on feasibility, integration complexity, and delivery approach.
  • Identify opportunities to extend implementations across additional use cases, geographies, or Tether technologies.

Implementations Oversight

  • Lead end-to-end coordination of QVAC-based implementations from kickoff through production deployment.
  • Define implementation roadmaps, milestones, and dependencies across AI models, infrastructure, and integration layers.
  • Ensure alignment between client expectations and actual product capabilities, avoiding scope drift or mispositioning.
  • Track progress across multiple concurrent AI deployments, ensuring timely delivery and readiness for production environments.

Cross-functional Coordination

  • Coordinate closely with product, engineering, and research teams to align on QVAC capabilities, limitations, and roadmap evolution.
  • Facilitate integration between client systems and QVAC components, including model deployment pipelines, APIs, and compute environments.
  • Work with legal and compliance teams where required, particularly in sensitive AI deployments involving data locality or privacy constraints.
  • Maintain structured communication flows across all stakeholders involved in the implementation lifecycle.

Governance & Reporting

  • Establish and maintain governance frameworks including implementation plans, risk tracking, and decision logs.
  • Produce executive-level updates summarizing progress, risks, blockers, and next steps.
  • Ensure documentation of implementation architectures, deployment patterns, and key learnings for reuse across future projects.
  • Support escalation management and ensure timely resolution of technical or operational challenges.

Are you interested in this position?


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