Applied Scientist (PhD) – Fraud & Identity Risk, Remote

SentiLink Corp

United States

Hybrid

USD 120,000 - 220,000

Full time

14 days+
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Benefits offered by this job

Employer paid group health insurance
401(k) plan with employer match
Flexible paid time off
Regular company-wide in-person events
Home office stipend

Job summary

SentiLink Corp in the United States is seeking an Applied Scientist to build core fraud-detection models and advance our risk products. This role targets new PhD graduates or early-career researchers applying machine learning to real-world fraud detection.

You will own the full ML lifecycle—from research and development to deployment at scale—working across teams. This role can be remote within the U.S., with a preference for candidates near Austin, San Francisco, or New York.

Qualifications

  • Bachelor’s, Master’s, or PhD in Statistics, Computer Science, Physics, Mathematics, or a related quantitative field or equivalent experience/research
  • Strong foundation in machine learning, statistics, or applied data science
  • Experience with Python and common data science tools through coursework, research, internships, or personal projects
  • Demonstrated ability to analyze complex problems and build data‑driven solutions
  • Strong communication skills and ability to explain technical ideas clearly
  • Interest in learning deeply about fraud, identity, and financial risk systems
  • Ability to write clean, maintainable code
  • Strong attention to detail and curiosity about real‑world data problems
  • Candidates must be legally authorized to work in the United States and must live in the United States
  • Thrive in a fast paced environment characterized by the need to solve extremely varied, high impact, open ended problems

Responsibilities

  • Develop and maintain SentiLink’s fraud detection models through the full model development lifespan: from data acquisition decisions through featurization, focusing labeling resources, model training, experimentation, productionalization, and monitoring
  • Build foundational modeling to drive SentiLink’s expanding suite of Fraud and Financial Risk products
  • Research new types of fraud and develop new SentiLink products around identity verification
  • Achieve success by researching / developing through iteration, integration of new data sources and inventive feature engineering
  • Write production‑ready code that can be relied on for real‑time decision making by our partners
  • Design, perform, and present analyses that will inform data acquisition, product development, risk operations priorities, marketing, and sales efforts
  • Work with engineering, risk operations, and data acquisitions to access necessary data, maintain data quality, and support data access

Skills

Machine learning
Statistics
Data science
Communication

Education

Bachelor’s, Master’s, or PhD in Statistics, Computer Science, Physics, Mathematics

Tools

Python
PostgreSQL
AWS

Job description

SentiLink Corp in the United States is seeking an Applied Scientist to build core fraud-detection models and advance our risk products. This role targets new PhD graduates or early-career researchers applying machine learning to real-world fraud detection.

You will own the full ML lifecycle—from research and development to deployment at scale—working across teams. This role can be remote within the U.S., with a preference for candidates near Austin, San Francisco, or New York.

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