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AI Engineer

Posted 6 days ago

OfficeSan Diego
HMBL is your premiere Talent Partner and Executive Search Solution. We were founded on the fact that technical recruiting is most fruitful via partnership --than it is transactional.

We partner the most innovative, cutting-edge tech companies. HMBL stances its foundational values around transparency, overcommunication, and the desire to improve. We leverage best industry practices, historical and predictive data and AI to acquire the industry's top 5% of technical talent.

Are you passionate about making the impossible possible? Are you interested in working with the best and brightest in the tech industry? Do you want to work on the front-lines of innovation?

We have what you're looking for!

Stay hungry. Stay HMBL.

We are looking for engineers excited about building long-lived AI systems, not chatbots. As a Founding AI Systems Engineer, you own the AI core of the platform: agents, tools, ontology generation, memory, retrieval, and evaluation. This is not a model-training role. The work is agent architectures, semantic retrieval, knowledge representation, enterprise data systems, decision intelligence, and autonomous learning from operational exhaust: the workflow steps, approvals, log entries, and data changes an enterprise produces as it runs.

Above all, you build in an LLM-first, reasoning-first way. Nearly everything you ship should make the platform a little more self-improving, the way Anthropic let Claude Code help write Claude Code.

### About the Role
  • LLM orchestration and tool calling: the frameworks StarLifter’s agents use to reason over enterprise context and act.

  • Agent frameworks: agentic systems that observe signals, reason about decision patterns, and recommend or automate governed actions.

  • Ontology generation: pipelines that induce a machine-readable model of each enterprise (its products, customers, orders, rules, and policies) from its own systems and knowledge bases.

  • Embedding pipelines and knowledge graph integration: the semantic retrieval layer that serves enterprise behavior back to agents.

  • Operational memory: the durable record of events, decisions, actions, and outcomes that lets the platform learn from every decision.

  • Evaluation harnesses: the systems that score confidence, benchmark outcomes, and prove decision quality improves over time.

  • ### Requirements
  • Real depth in modern AI tooling: LLM orchestration, RAG architectures, retrieval systems, and knowledge graphs in production. This field is young (these tools are only a couple of years old), so we care more about how far you’ve pushed them, and how fast you learn, than about years on a résumé.

  • Hands-on with agent frameworks and orchestration tooling such as LangGraph and DSPy.

  • Strong engineering fundamentals and comfortable in a modern typed stack (we build in TypeScript + Node). You write production-quality code and think about reliability and scale by default.

  • Genuinely excited by enterprise ontology induction, operational memory, decision patterns, agentic systems, and learning from operational exhaust.

  • The kind of engineer who tests assumptions and shows up knowing more than we do about deep AI. You’ll challenge our thinking and make the platform better for it.

  • Intentional about your work and your career: you build meaningful, long-lived systems and stay to see them through, energized by the ownership and ambiguity of an early-stage company.

  • A craftsperson and a colleague: low ego, high standards, excited to build alongside a small, senior, highly collegial team.

  • Nice to have:

  • Working familiarity with core enterprise business processes (Quote-to-Cash, Procure-to-Pay, Hire-to-Retire) and ERP data, enough to understand what the platform is reasoning about.

  • Semantic modeling, metadata systems, or business-context modeling experience.

  • Deep familiarity with enterprise integrations (SAP, Oracle, ServiceNow, Salesforce, Snowflake, Databricks).

  • Prior founding-engineer or very-early-startup experience.

  • Equal Opportunity Employer:
    We are an equal opportunity employer and value diversity at our company. We prohibit any form of workplace discrimination based on race, color, ethnicity, national origin or ancestry, citizenship, religion, sex, sexual orientation, gender identity or expression, veteran status, marital status, pregnancy or parental status, or disability. Applicants will not be discriminated against based on these or other protected categories or social identities
    Job details
    Workplace
    Office
    Location
    San Diego

    Bodwell Vasek Wells DeSimone LLP, BVWD, is a full service, registered CPA firm offering audit, tax, and consulting services. Created from the awareness that public accounting needs great leadership, we operate as a team leading by example in building up others, leveraging our expertise, and thriving in dynamic environments. Our people always come first, quickly followed by our relentless pursuit of above and beyond client service. Our founders have Big 4 public accounting backgrounds and have also spent years in C-suite positions. We have served clients across most industries and through various stages of the business life cycle. We believe there is no substitute for learned experience and no excuse for less than exemplary customer service. We aim to help our clients identify and seize opportunities even in difficult and stressful times.

    Employees
    89
    Industry
    Accounting
    Headquarters
    Dallas, Texas
    Founded
    2021
    Company location
    8117 Preston Road, Suite 460, Dallas, Texas 75225, US
    Specialties
    Audit & Assurance, Consulting, Transaction Advisory, Tax Advisory, Tax Consulting, Tax Compliance, Financial Statement Audit, EBP Audit, Employee Benefit Plan Audit, Mergers & Acquisitions, M&A, Quality of Earnings, SOX, Internal Controls, Risk Advisory, Cash Flow, Budget, and Compliance

    Key team members

    Michael Bodwell

    Michael Bodwell

    Matt Coscia

    Matt Coscia

    Maison Vasek

    Maison Vasek

    Mark DeSimone

    Mark DeSimone

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