AI Delivery Lead Architect

Hybrid in Columbus, OH, US • Posted 8 hours ago • Updated 8 hours ago
Contract W2
12 Months
No Travel Required
On-site
Depends on Experience
Fitment

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Job Details

Skills

  • Negotiations
  • Demonstrations
  • Documentation
  • Evaluation
  • Fluency
  • Forecasting
  • Change Management
  • Collaboration
  • Cost Management
  • Data Flow
  • Estimating
  • Amazon Web Services
  • Artificial Intelligence
  • Microsoft Azure
  • PASS
  • PMP
  • Agile
  • Budget
  • Business Cases
  • Leadership
  • Legal
  • Management
  • Use Cases
  • Vendor Relationships
  • Vertex
  • Solution Architecture
  • Status Reports
  • Partnership
  • Reporting
  • Quality Improvement
  • Risk Management
  • Accountability
  • Privacy
  • Product Demonstration
  • Product Management
  • Roadmaps
  • Sprint
  • Systems Design
  • TOGAF

Summary

5-10 hours/week
Hybrid - 20% on site
Interviews in person

 

 

We are seeking an AI Delivery Lead to own the path from business problem to shipped, adopted AI product. This role is the single point of accountability between business stakeholders and the engineering team — responsible for shaping what gets built, defining what "done" means, and ensuring delivered solutions produce measurable value.

 

The candidate will be technically credible enough to design solution architecture and challenge engineering decisions, and commercially fluent enough to negotiate scope with executives. This is a leadership and delivery role, though depth in AI system design is essential.

 


Key Responsibilities

Demand Shaping and Prioritization

 

-        Run intake for AI use-case requests, assess each for business value, feasibility, data readiness, and risk, and maintain a prioritized delivery roadmap.

-        Translate ambiguous business problems into scoped requirements, success criteria, and technical designs the engineering team can execute against.

 

Solution Architecture

 

-        Define target architecture for AI products — agent design, retrieval strategy, model selection, integration points, and data flows — in partnership with senior engineers.

-        Set and enforce architectural standards, reusable patterns, and build-versus-buy decisions across the AI portfolio.

-        Evaluate models, platforms, and vendors, and own the technical case behind each selection.

 

Delivery Ownership

 

-        Own the full delivery lifecycle: scoping, estimation, sprint planning, dependency management, risk mitigation, release, and hypercare.

-        Define acceptance criteria appropriate to probabilistic systems, including evaluation sets, accuracy and quality thresholds, latency budgets, and fallback behavior — recognizing that AI features cannot be accepted on binary pass/fail alone.

-        Manage delivery risk actively, escalate early, and keep commitments realistic against engineering capacity.

 

Stakeholder and Governance Management

 

-        Serve as the primary interface for business sponsors — running discovery sessions, demos, steering reviews, and executive status reporting.

-        Calibrate stakeholder expectations on what current AI can and cannot reliably do, and manage the gap between demo and production.

-        Shepherd solutions through security, legal, privacy, and responsible AI review, and maintain documentation of model use, data handling, and approved use cases.

 

Value Realization

 

-        Define and track benefit metrics — adoption, time saved, quality improvement, cost avoided — and report outcomes against the original business case.

-        Own AI platform and inference cost management, including budget forecasting and per-workload cost attribution.

-        Partner with enablement and change management teams to drive adoption after launch.

 


Preferred Qualifications

-        Prior hands-on engineering or data background.

-        Experience with Azure AI Foundry, AWS Bedrock, Google Vertex AI, or comparable enterprise AI platforms.

-        Familiarity with AI governance frameworks.

-        Experience managing vendor relationships and negotiating commercial terms.

-        Product management experience or formal certification in Agile, PMP, or an architecture framework such as TOGAF.

-        Experience building an AI delivery function from an early or ad hoc state.

 

Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 10371930
  • Position Id: 9051184
  • Posted 8 hours ago
Contact the job poster
TK

Tadakamadla Kalyan Kumar

Recruiter @ Data Systems Integration Group
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