Lead AI Engineer

Veracity Insurance

$200K — $220K *
US-AnywhereRemote in United States
Enterprise Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's or Master's in Computer Science, Engineering, or related field; equivalent experience accepted
  • 5+ years in software engineering with significant production AI/ML or LLM/GenAI systems experience
  • 2+ years experience with LLM/GenAI and building agentic systems
  • Proven history of reengineering business processes using AI in enterprise settings
  • Expertise in making informed build vs. buy vs. integrate decisions
  • Fluency in Python and modern GenAI application frameworks, with a focus on general proficiency over specific toolsets
  • Excellent written and verbal communication skills for technical documentation and presentations

Responsibilities

  • Define the AI engineering roadmap and architecture standards
  • Lead decision-making on build vs. buy vs. integrate for AI systems
  • Evaluate emerging AI tools and provide recommendations
  • Serve as a technical escalation point for complex AI design challenges
  • Architect scalable and reliable AI solutions for enterprise platforms
  • Establish LLMOps practices and ensure integration with existing systems
  • Collaborate with Product and Engineering to align AI capabilities with business goals

Benefits

  • Health, dental, and vision plans
  • 4 weeks of Paid Time Off
  • 10 Paid Company Holidays plus 2 floating holidays
  • 401K Programs with employer match
  • Personal assistance programs for well-being support
Full Job Description
We are seeking a Lead AI Engineer to serve as our organization's foremost technical authority on artificial intelligence strategy, architecture, and adoption. At Veracity, that means shaping how AI is built and scaled across a customer-facing digital insurance platform serving small business owners nationwide - from how we surface coverage recommendations to how we prepare for a world where AI agents increasingly research and purchase insurance on behalf of human customers.

This is not a people management role - it is a systems leadership role. You will act as the connective tissue between engineering, product, and business leadership, making and owning the high-stakes technical decisions: build vs. buy, platform selection, architectural patterns, and AI tooling standards. You will bring structure and discipline to our AI practice while operating with the urgency and adaptability of a fast-moving, independent company.

Key Responsibilities

Technical Strategy & Direction

  • Define the AI engineering roadmap and architecture standards across the organization
  • Lead build vs. buy vs. integrate decision-making for AI systems and platforms - and be accountable for articulating how you arrived at those decisions
  • Evaluate emerging tools, frameworks, and models; provide clear, defensible recommendations to leadership
  • Serve as the ultimate technical escalation point for complex AI/ML system design challenges

Enterprise Systems & Scaling

  • Architect AI solutions for our enterprise platform - which is actively being upgraded and requires someone comfortable working across both the process layer and the underlying platform architecture as a normal part of the role, not just layering AI on top of stable infrastructure
  • Design systems for scale, reliability, and cost-efficiency in production environments
  • Establish LLMOps practices - evaluation and regression suites for LLM-powered features, cost and quality observability, versioned prompts and configs with staged rollout and rollback, and production guardrails
  • Ensure AI systems integrate cleanly with existing product and engineering infrastructure

Cross-Functional Collaboration

  • Partner closely with Product and Engineering leadership to align AI capabilities with business outcomes
  • Receive operational support to help initiate and coordinate cross-functional engagement, allowing you to stay focused on technical leadership and decision-making
  • Provide clear guidance on resource allocation - who owns what, who should be engaged, and in what sequence
  • Translate complex technical concepts for non-technical audiences, including executives and business stakeholders
  • Challenge direction constructively and push back on approaches that compromise long-term system health

AI Coding & Process Transformation

  • Champion and introduce AI-assisted coding practices and developer tooling across the engineering organization
  • Define standards for responsible AI development including guardrails, evaluation frameworks, and security considerations
  • Drive continuous improvement in how the organization builds and ships AI-powered features

Requirements and Qualifications

Required

  • Bachelor's or Master's degree in Computer Science, Engineering, or a related quantitative field, or equivalent practical experience
  • 5+ years of software engineering experience with a meaningful portion in production AI/ML or LLM/GenAI systems - strong judgment and vision at the 5-6 year mark will not be screened out on tenure alone
  • 2+ years building production LLM/GenAI and agentic systems, plus fluency with AI-assisted coding tooling and the judgment to set org-wide standards, evals, and guardrails for AI-generated code
  • Demonstrated track record of taking an existing business process apart and rebuilding it with AI at the core within an existing enterprise environment - shipped to production and owned the outcome
  • Production experience with LLM/GenAI and agentic systems - agent orchestration, tool calling, RAG, structured outputs - with the fluency to set org-wide standards, evals, and guardrails for AI-generated code
  • Sound judgment about where AI belongs and where it must not - comfortable with probabilistic agents for customer-facing and research tasks, while treating policy binding, money movement, and compliance flows as deterministic, auditable, and human-governed; this framing is non-negotiable in an insurance context
  • Experience making and communicating build vs. buy vs. integrate decisions at an organizational level
  • Proficiency in Python and the modern GenAI application stack - agent and orchestration frameworks, model-provider SDKs, vector databases, and evaluation tooling; screened for fluency with the stack generally, not a specific checklist of tools
  • Exceptional written and verbal communication skills - you can write a crisp architecture decision record and present it to a board-level audience

Preferred

  • Direct evidence of legacy-process redesign with real latitude to alter underlying platform architecture - not just process work layered on top of stable infrastructure
  • Enterprise or regulated-domain experience, ideally in a business context closer to insurance or financial services
  • Experience in a technical lead or principal engineer role with broad organizational influence
  • Background working closely with product engineering teams in a dual-track agile model
  • Experience with AI cost management, observability, and governance frameworks

Perks

  • Health, dental, and vision plans
  • Amazing work-life balance with 4 weeks of Paid Time Off
  • 10 Paid Company Holidays with 2 floating holidays
  • 401K Programs with employer match
  • Personal assistance programs for support in a healthy personal and work life

Compensation Range:$200k/yr - $220k/yr + 10% Bonus

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