Senior Data Scientist (Fraud Detection and Investigative Analytics)

Posted Yesterday
Be an Early Applicant
Hiring Remotely in Washington, DC, USA
In-Office or Remote
Senior level
Artificial Intelligence • Software
The Role
Design, test, and implement supervised and unsupervised statistical and ML models to detect loan fraud and improper payments. Support criminal investigations with data analysis, develop repeatable data pipelines, document methods for evidentiary use, and build visualizations and dashboards. Collaborate with investigators, data engineers, and leadership; automate tasks with Python and Office/Power Platform tools; and identify new analytic opportunities.
Summary Generated by Built In

Senior Data Scientist (Fraud Detection and Investigative Analytics)

Location: Herndon, VA (Remote Work)

Must have an Public Trust Clearance

KEY RESPONSIBILITIES

  • Review, maintain, and extend all existing loan fraud indicators developed by TSD, and provide authoritative expertise on analytic method selection.
  • Design, develop, test, calibrate, and implement advanced statistical and machine learning models targeting financial fraud, improper payments, and non compliance within SBA programs.
  • Build and refine both supervised and unsupervised models, including regression, Bayesian, clustering, and ensemble approaches, and tune candidate models to determine best fit.
  • Perform data quality analysis on source tables to identify abnormalities and inconsistencies, and develop repeatable processes for combining and analyzing large relational, structured, and unstructured sources.
  • Collaborate directly with criminal investigators to determine and execute analytic strategies supporting loan fraud cases, adapting analysis as case needs shift and proactively surfacing data quality issues.
  • Adhere closely to the federal rules of criminal procedure governing protected information, including Rule 6(e).
  • Develop case leads for SBA OIG investigations from model outcomes.
  • Document all methodology, test models, and production models in a form that satisfies criminal evidentiary requirements.
  • Build visualizations and dashboards that convey methodological choices, outcomes, and predictive capability, and iterate them on end user feedback.
  • Deliver findings in multiple registers: data summaries and visualizations for investigative staff, executive summaries for OIG leadership.
  • Coordinate with the data engineering seat so the architecture supports machine learning efficiently.
  • Create programming and automation techniques that improve task efficiency using SharePoint, Python, Excel, Power BI, Power Apps, and similar tools.
  • Identify new business questions that expand the scope of analysis and reporting.

Requirements

Required:

Education

Master's, Ph.D., or doctorate level equivalent degree in data science, machine learning, computer science, mathematics, or a related field. Alternatively, ten years of applied work experience in any of the same fields.

  • 5+ years Designing, implementing, and maintaining advanced AI systems and predictive models, including both supervised and unsupervised models.
  • 5+ years Developing analytic rules and models using leading edge analytic tools and best practices.
  • 5+ years Developing regression, classification, and other statistical models to identify anomalies, patterns, and predictive variables.
  • 3+ years Providing data support for criminal investigations into financial fraud or abuse of government funds.
  • 3+ years Manipulating data in Python. Pandas is required.
  • 3+ years Working in a modern cloud environment: Azure, AWS, or GCP. Certifications preferred.
  • 2+ years Conducting advanced data analysis in SQL, specifically SQL Server and PostgreSQL.
  • 2+ years Developing and scaling natural language processing solutions.
  • 2+ years Presenting methods and findings to technical and non technical stakeholders, both orally and in written products and visualizations.

PREFERRED QUALIFICATIONS

  • Cloud certification in Azure, AWS, or GCP.
  • Direct experience with SBA loan programs, including 7(a), 504, EIDL, or PPP, or with comparable federal lending or grant fraud.
  • Entity resolution, record linkage, or graph and network analysis applied to fraud.
  • Experience producing analytic products that were used in a criminal referral or prosecution.
  • Model explainability practice such as SHAP or comparable feature attribution methods.

Benefits

We are proud to offer competitive compensation and benefits packages to include

  • Medical 
  • Dental
  • Vision
  • Basic Life 
  • Health Saving Account
  • 401K matching
  • Three weeks of PTO/Sick
  • 11 Paid Holidays
  • Pre-Approved Online Training

Skills Required

  • Master's, Ph.D., or doctorate in data science, machine learning, computer science, mathematics, or related field, or ten years of applied work experience
  • Must have an active Public Trust clearance
  • 5+ years designing, implementing, and maintaining advanced AI systems and predictive models (supervised and unsupervised)
  • 5+ years developing analytic rules and models using leading-edge analytic tools and best practices
  • 5+ years developing regression, classification, and other statistical models to identify anomalies and predictive variables
  • 3+ years providing data support for criminal investigations into financial fraud or abuse of government funds
  • 3+ years manipulating data in Python (Pandas required)
  • 3+ years working in a modern cloud environment (Azure, AWS, or GCP); cloud certifications preferred
  • 2+ years conducting advanced data analysis in SQL, specifically SQL Server and PostgreSQL
  • 2+ years developing and scaling natural language processing solutions
  • 2+ years presenting methods and findings to technical and non-technical stakeholders in oral and written forms
  • Cloud certification in Azure, AWS, or GCP
  • Direct experience with SBA loan programs (7(a), 504, EIDL, PPP) or comparable federal lending/grant fraud
  • Entity resolution, record linkage, or graph/network analysis applied to fraud
  • Experience producing analytic products used in a criminal referral or prosecution
  • Model explainability practice such as SHAP or comparable feature attribution methods
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The Company
HQ: Leesburg, VA
11 Employees
Year Founded: 2017

What We Do

We Love Building Innovative Digital Solutions using Automation and A.I./ML to Solve Complex Problems for our Customer's Mission

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