Senior AI/Machine Learning Engineer – Fraud Detection
Job in
California, Moniteau County, Missouri, 65018, USA
Listed on 2026-09-12
Listing for:
Jobtailor
Full Time
position Listed on 2026-09-12
Job specializations:
-
Software Development
Machine Learning/ ML Engineer, AI Engineer (Applied/Software)
Job Description & How to Apply Below
- Build and deploy high-precision ML models for fraud and abuse detection, anomaly detection, and risk scoring
- Engineer risk signals from large-scale account, device, network, behavioral, velocity, and session data
- Integrate ML/AI features into real-time risk decisioning and automated enforcement systems
- Apply LLMs and AI agents to expand detection, investigation, and classification capabilities
- Translate emerging attack patterns and relevant research into new models, signals, and mitigations
- Evaluate solutions across accuracy, latency, cost, and customer impact
- Own model evaluation, monitoring, and drift management as attacker behavior evolves
- Partner across engineering, product, and risk teams to ship production-ready capabilities
- 8+ years building and operating production ML systems, ideally in fraud, abuse, risk, identity, trust & safety, or other adversarial domains
- Practical experience with Python, SQL, and current ML frameworks such as Py Torch
- Experience guiding ML systems from feature engineering through production deployment and monitoring
- Strong software and data engineering skills across ML, backend, and data infrastructure
- Experience building with LLMs and/or AI agents, particularly for AI/generation-abuse use cases
- Strong technical judgment, ownership, and ability to solve ambiguous, adversarial problems
- Bachelor's degree or equivalent experience in Computer Science, Statistics, Mathematics, or a related field
- Device fingerprinting, identity verification, behavioral signals, network intelligence, or VPN/proxy detection preferred
- Real-time risk evaluation and automated control systems preferred
- Human-in-the-loop or AI-assisted evaluation systems preferred
- Distributed systems and high-scale data pipelines preferred
- Strong adversarial approach preferred
Expertise in building and deploying high-precision ML models for fraud detection and risk scoring, with strong capabilities in integrating ML/AI features into real-time systems. Proficient in evaluating model performance and managing drift in adversarial environments.
Highest-signal resume keywords- 8+ Years Building Production ML Systems
- Proficient in Python and SQL
- Experience with PyTorch and Current ML Frameworks
- Strong Software and Data Engineering Skills
- Experience with LLMs and AI Agents
- Machine Learning Model Development
- Feature Engineering
- Model Evaluation and Monitoring Risk Scoring
- Anomaly Detection
- Fraud Detection
- Data Engineering
- Behavioral Signals Analysis
- Real-Time Risk Evaluation
- Automated Control Systems
- Strong Technical Judgment
- Ownership
- Problem Solving
- Fraud
- Abuse
- Risk Management
- Identity Verification
- Device Fingerprinting
- Network Intelligence
- Adversarial Domains
- Human-in-the-Loop Systems
- ML Frameworks
- Distributed Systems
- Data Pipelines
- AI Agents
Position Requirements
10+ Years
work experience
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