Founding AI Engineer

Clera

$225K — $255K *
Enterprise Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • 8+ years of engineering experience with production LLMs.
  • Proven track record of shipping LLM-powered product features.
  • Hands-on experience building evals and observability for LLMs.
  • Experience with MCP or LLM agent integrations.
  • Familiarity with LangChain, LlamaIndex, or similar platforms.
  • Experience with data residency and compliance (SOC 2, GDPR) in auditing environments.
  • Strong communication skills for explaining complex systems to diverse stakeholders.
  • Product-engineer instincts for pragmatic solutions in a startup atmosphere.

Responsibilities

  • Build evaluation harnesses and benchmarks using tracked pricing outcomes.
  • Systematize and automate expert review workflows currently performed manually.
  • Develop AI personas simulating B2B buying behaviors.
  • Automate persona training pipelines that are currently manual.
  • Own LLM routing and manage trade-offs across providers like Anthropic and Google.
  • Maintain infrastructure ensuring data residency and compliance standards.
  • Extend the MCP server for enhanced agent-driven features.
  • Evaluate and resolve systemic latency and data drift issues in pricing strategies.

Benefits

  • High-impact role with ownership over product direction.
  • Early-stage equity opportunities.
  • Ability to drive measurable revenue impact from day one.
Full Job Description
About the Role

We're a small, product-focused team building an AI-powered B2B pricing platform that helps companies continuously optimize their pricing strategies - from packaging design and willingness-to-pay analysis to real-time deal guidance and discount governance. As our Founding AI Engineer, you'll own the evaluation systems, feedback loops, and LLM infrastructure that allow our pricing AI to earn trust and drive measurable revenue impact.

This is a high-ownership, founding-team role. Your work directly ties model outputs to revenue and compliance constraints in high-stakes B2B pricing decisions. You'll be shipping to real customers from day one and expected to own outcomes end-to-end.
What You'll Do
  • Build eval harnesses and benchmarks that use tracked pricing outcomes as ground truth.
  • Systematize and automate expert review workflows that are currently done manually.
  • Develop AI personas that simulate B2B buying committees and behavioral effects using usage data and call transcripts.
  • Automate persona training pipelines that are today manual.
  • Own LLM routing across providers (Anthropic, Google, etc.) with explicit cost, latency, and quality tradeoffs.
  • Maintain infrastructure and data residency boundaries (e.g., ensure EU model calls remain in the EU).
  • Extend the MCP server used by LLM agents - including customer-facing agents - so features are agent-driven.
  • Define "done" as when agents can drive features through MCP, not just when a UI renders them.
  • Work within a typed ontology of pricing entities so model outputs are structured and auditable.
  • Identify and remediate systemic latency, data drift, and cold-start issues in the pricing loop.
What We're Looking For

Required
  • 8+ years of engineering experience with strong, recent production LLM depth.
  • Proven track record shipping and owning LLM-powered product features in production - not just dashboards or research prototypes.
  • Direct hands-on experience building evals and observability for LLM systems.
  • Experience with MCP or building tools/integrations for LLM agents.
  • Familiarity with platforms such as LangChain, LlamaIndex, Braintrust, or OpenRouter.
  • Experience operating under data residency, SOC 2, and GDPR constraints in domains where correctness is audited (pricing, billing, payments, or similar).
  • Strong communication skills - able to explain non-deterministic systems clearly to clients, partners, and pricing experts.
  • Product-engineer instincts: able to scope pragmatic solutions and deliver under ambiguity in a lean startup environment.
  • Authorized to work in the US. Visa sponsorship is not available for this role.

Nice to Have
  • Experience building evaluation harnesses specifically for AI pricing recommendations using historical pricing outcomes as ground truth.
  • Background in SaaS pricing, revenue operations, or a high-stakes revenue-impact domain.
Compensation & Benefits
  • Base salary: $225,000 - $255,000 USD annually
  • Early-stage equity commensurate with a founding-team role
  • High-impact, high-ownership position with direct influence over product and technical direction
Location

This role is on-site in San Francisco, CA. Candidates should be based in or willing to relocate to the San Francisco Bay Area.

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