Senior Entity Resolution Engineer

DEFCON AI

• $160K — $195K *
US-AnywhereRemote in United States
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 5+ years of experience in production record matching or entity resolution
  • Ability to articulate matching tradeoffs, particularly false merges versus false splits
  • Strong proficiency in Python and SQL, especially with large, messy datasets
  • Skilled in explaining matching decisions to non-technical stakeholders
  • US Citizenship required
  • Active US Secret clearance required to start

Responsibilities

  • Implement and refine entity-level record matching processes
  • Reuse a single matching engine for various record linkage tasks
  • Establish provenance for all nodes and edges in the graph
  • Manage the tradeoff between false merges and false splits in matching decisions
  • Execute the matching approach based on in-house design specifications
  • Document matching logic for reference by other engineers

Benefits

  • Fully remote, results-based work environment
  • Comprehensive health insurance fully paid for you and your family
  • Unlimited PTO with manager approval
  • Flexible work hours to manage your day
  • 14 weeks of fully-paid parental leave
Full Job Description
About the Role

This role sits in one of the most critical parts of the platform: determining when records from dozens of disparate sources represent the same real-world entity. Graph design and matching strategy are developed in-house, and you'll be the engineer who turns those concepts into production-ready capability. You'll shape implementation details, but this is first and foremost a builder role.

You'll join a team building technology that supports real-world government mission needs. The platform ingests and analyzes data from a wide range of sources, applies AI-assisted workflows to surface what matters most, and provides transparent, explainable recommendations that analysts can trust. Every match, merge, and relationship you create helps turn fragmented information into insight.

You'll own the matching build lifecycle end to end: blocking strategies, candidate generation, pairwise scoring, clustering, threshold policy, and the deduplication and known-entity checks that reuse the same engine. You'll also build the provenance framework that lets every node, edge, and assertion in the graph be traced to the source that asserted it, so matching decisions are auditable and explainable.

This is a fully remote role with occasional travel to DEFCON AI headquarters, customer sites, and partner facilities as needed.

Key Responsibilities
  • Implement and refine entity-level record matching: blocking, candidate generation, pairwise scoring, clustering, and threshold policy
  • Reuse one matching engine for record linkage, deduplication, and known-entity checks
  • Establish provenance so every node and edge traces back to the source that asserted it
  • Own the false-merge versus false-split tradeoff in matching decisions and make it explainable
  • Own technical execution of the matching approach against the in-house design: the fixed reference dataset, candidate retrieval and final matching evaluated separately, and threshold recommendations with evidence for review
  • Document matching logic in enough detail to serve as an implementation reference for other engineers


Required Qualifications
  • 5+ years of experience, including shipping production record matching or entity resolution
  • Ability to explain the matching tradeoffs you made, including how you handled false merges versus false splits
  • Strong Python and SQL, with demonstrated experience on large, messy, real-world data
  • Ability to explain a matching decision to a stakeholder who must defend it without understanding its internals
  • US Citizenship Required
  • Active US Secret clearance required to start


Preferred Qualifications
  • Direct experience applying probabilistic matching to inconsistent identity data such as names, dates, addresses, and identifiers, and familiarity with the failure modes of each
  • Familiarity with probabilistic record-linkage frameworks and tooling such as Fellegi-Sunter models, Splink, Dedupe, Zingg, or an in-house equivalent
  • Record linkage, master data management, or identity management experience
  • Graph data modeling and graph algorithms applied in production
  • PostgreSQL and pgvector or comparable
  • Active Top Secret clearance


What Success Looks Like
  • Matching decisions that can be explained and defended to a non-technical reviewer
  • A data model and matching pipeline the rest of the team can build on without redesigning it
  • Provenance intact end-to-end, so every match traces to its source


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: $160,000-$195,000. This represents the typical salary range for this position based on experience, skills, and other factors.

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