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ML Engineer, Retrieval & Grounded Generation

Join DEFCON AI as an ML Engineer to build scalable retrieval systems and integrate language models in a fully remote environment.

Location
Remote, USA
Compensation
$165k–$200k/yr
Level
senior
Type
full time · Remote

Posted by employer 3 days ago

First seen on Joblaze 2 days ago

Last verified on the company career page 7 hours ago

Apply at DEFCON AI → Save job Scanned from defconai.com

What you'll build

  • Implement embeddings, vector storage, and retrieval
  • Integrate language models with cited source records
  • Design prompts and output schemas
  • Own model packaging, versioning, and serving
  • Instrument telemetry for quality measurement

Must have

  • 5+ years of experience in production retrieval-augmented systems
  • Strong Python skills with experience in embeddings and vector retrieval
  • Ability to detail retrieval design and citation failures
  • US Citizenship required
  • Active US Secret clearance required

Nice to have

  • Experience deploying models into restricted environments
  • Self-hosted or open-weight model operation
  • Fine-tuning, adapters, or custom embeddings
  • Federal DevSecOps or cloud environment experience
  • Active Top Secret clearance

Role intensity

70% hands-on coding

AI in the day-to-day

You'll build embeddings, vector storage, and retrieval at scale, integrating language models for citation-bound text generation.

Requirements

Experience
5+ years
Visa
No sponsorship (stated in posting)

Benefits

Unlimited PTO Remote Work Health Insurance Parental Leave

Joblaze summary

In this role, the ML Engineer focuses on developing and implementing retrieval-augmented systems that integrate language models with a strong emphasis on citation accuracy and provenance tracking. Key skills include expertise in Python, embeddings, and vector storage, alongside a solid understanding of production-level systems. This position is suited for experienced professionals with a background in building scalable retrieval systems, particularly those familiar with government or restricted environments. DEFCON AI operates in a fully remote setting, emphasizing results-driven work.

Joblaze insights

  • Listed 2 days ago — first seen on Joblaze October 3, 2026. Last confirmed on DEFCON AI's careers page October 5, 2026.
  • Salary band is below the typical range for AI/ML roles (median ~$190,000).
  • Starts above 29% of 206 comparable senior ai/ml roles in United States that list Python we track (median $180,000 across 71 companies). See Python salary trends
  • Python appears in 52.7% of 541 comparable senior ai/ml roles in United States; Language Models appears in 0.2% of 541 comparable senior ai/ml roles in United States.

Quick facts

Is the ML Engineer, Retrieval & Grounded Generation role remote?
Yes — DEFCON AI lists this as a fully remote position.
What's the salary range?
DEFCON AI lists $165,000–$200,000 for this role.
How much experience is required?
At least 5 years of relevant experience for this ML Engineer, Retrieval & Grounded Generation role.
What's the tech stack?
Joblaze extracted these technologies from the posting: Language Models, Python, Retrieval, embeddings, vector storage.
What seniority level is this role?
DEFCON AI targets senior candidates for this position.
Is this full-time or contract?
Full-time for this ML Engineer, Retrieval & Grounded Generation role at DEFCON AI.

From the original posting

ABOUT DEFCON AI

About the Role

You'll join the analytics and AI engineering team behind a system that genuinely matters: an AI-assisted platform that pulls together records from dozens of external feeds, resolves them to the right person, surfaces what a human reviewer should look at first, and explains every recommendation in plain, defensible terms — running inside a secure government cloud environment. It's the kind of problem where the details you get right are the ones that count, which is exactly what makes it worth doing well.

As ML Engineer, Retrieval & Grounded Generation, you'll build embeddings, vector storage, and retrieval at scale, and integrate language models so that every piece of generated text is bound to cited source records and citation failures are tested for rather than assumed away. You'll also own prompt and output-schema design; model packaging, versioning, serving, and rollback; and the telemetry hooks that make later measurement possible without manual reconstruction - real infrastructure for a real production system, not a demo.

This is a fully remote role, with occasional travel to DEFCON AI HQ, customer sites, and vendor facilities as required.

Key Responsibilities

  • Implement embeddings, vector storage, and retrieval across a large, provenance-tracked evidence base
  • Integrate language models so generated text is bound to cited source records; test for citation failures rather than assuming them away
  • Design prompts and output schemas
  • Own model packaging, versioning, serving, and rollback
  • Instrument telemetry for retrieval and generation quality, recommendation/version attribution, overrides, abstentions, grounding failures, latency, throughput, and measurement events defined with Model Test
  • Provide bounded model assistance for difficult narrative extraction where deterministic processing is insufficient, with every output tied to its source passage
  • Supply the recorded rule context to every model-assisted step, so each output carries the exact rule versions and ordered context it received
  • Maintain a modular in-boundary serving path, self-hosted or managed, alongside the primary managed inference service, so the platform does not depend on one provider’s availability or approval

Required Qualifications

  • 5+ years of experience, including a production or near-production retrieval-augmented (RAG) system you built yourself
  • Ability to speak in detail to your retrieval design, which vector store you used and why, how you tested grounding, what citation failures looked like in practice, and how rollback worked
  • Strong Python, with hands-on experience in embeddings and vector retrieval at scale
  • Clarity on what actually shipped in past work — prototype, proposal, or deployed code — since that distinction matters more here than the title on a resume
  • US Citizenship Required
  • Active US Secret clearance required to start.

Preferred Qualifications

  • Experience deploying models into restricted or air-gapped environments
  • Self-hosted or open-weight model operation
  • Fine-tuning, adapters, or custom embeddings
  • Federal DevSecOps, RMF, ATO, or DoW cloud environment experience
  • Active Top Secret clearance

What Success Looks Like

  • Generated explanations that assert no more than the sources support, with the citation path intact and citation failures tested rather than assumed away
  • A retrieval system that performs at scale on a large, provenance-tracked evidence base
  • Model rollback that works when it's needed, with telemetry complete enough that measurement does not require manual reconstruction

What We Offer

  • A fully remote, results-based environment
  • Competitive salary, bonus, and equity package
  • 100% employer paid, comprehensive health insurance including medical, dental, and vision for you and your family
  • Unlimited PTO, with your manager's approval
  • Flexible work environment where you manage your work day
  • 14 weeks of fully-paid parental leave

Salary Range: $165,000–$200,000. This represents the typical salary range for this position based on experience, skills, and other factors.

We’re an Equal Opportunity Employer: You’ll receive consideration for employment without regard to race, sex, color, religion, sexual orientation, gender identity, national origin, protected veteran status, or on the basis of disability.

Applicant Data Disclosure

Standard company text repeated across DEFCON AI's postings is omitted here.

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