Full Time

Lead Data Scientist – Fraud Detection, AI Risk Intelligence & Behavioral Analytics

  • Remote
  • Specialism : Lead Data Scientist.
  • Post Date: July 26, 2025
  • Expires In : 5 Days
  • Apply Before: October 26, 2025
Job Overview

Lead Data Scientist – Fraud Detection, AI Risk Intelligence & Behavioral Analytics (Qatar Fintech Sphere)

Location: Remote (Preference for applicants with regional knowledge of Qatar’s digital banking space)

Position Type: Full-Time – Remote

Specialization: Artificial Intelligence, Payment Fraud Prevention, Graph Analytics, Biometric Security

Job Summary:

A prestigious opportunity is now available for an advanced-level Data Scientist with deep command of machine learning applications in real-time financial fraud detection, high-volume transaction analysis, and behavioral biometrics.

This role directly contributes to building the machine intelligence backbone of a new generation of Qatar-based fintech platforms—particularly those at the intersection of AI-based risk scoring, micro-transaction monitoring, and explainable AI for compliance.

You will lead initiatives to analyze complex financial interactions, uncover fraud networks using graph-based learning, and deploy cloud-native, real-time ML risk engines integrated into digital wallets, payment processors, and neobank APIs.

Scope of Work:

📌 Advanced Model Development & Evaluation

  • Build hybrid models for fraud scoring using boosted trees, graph neural networks, and deep learning autoencoders.

  • Train and evaluate fraud detection models using millions of historical transactions enriched with geospatial, device, and behavioral metadata.

  • Develop anomaly detection systems capable of flagging synthetic identities, coordinated fraud rings, and merchant collusion.

📌 Real-Time ML Pipelines & Cloud Integration

  • Partner with DevOps to deploy containerized ML inference systems using Kubernetes, Flink, Kafka, and AWS Sagemaker.

  • Optimize fraud detection latencies under 200ms, enabling real-time decisioning without false positives that compromise user experience.

📌 Ethical AI, Regulatory Interpretability & XAI

  • Build interpretability dashboards (SHAP, LIME) to enable compliance officers and regulators to understand AI decisions at transaction and aggregate levels.

  • Ensure AI models conform to emerging Qatar Central Bank (QCB) standards for automated decisioning, fairness, and auditability.

📌 Behavioral Analytics, Biometrics & Risk Intelligence

  • Utilize behavioral signals (e.g., typing cadence, mobile accelerometer data, swipe patterns) to build behavioral fingerprints for fraud prevention.

  • Construct fraud graph topologies using Neo4j or TigerGraph to analyze abnormal fund flows, layered accounts, and coordinated SIM/device usage.

Candidate Attributes:

Technical Mastery

  • 6+ years in applied data science roles with direct experience in fraud analytics, preferably in MENA fintech environments.

  • Expert-level proficiency in Python (PyTorch, scikit-learn, XGBoost), SQL, Spark, and streaming ML architectures.

Domain Expertise

  • Proven success working on fraud analytics for neobanks, cross-border payments, or digital wallet systems.

  • Familiarity with Qatar’s cybersecurity mandates, financial fraud typologies, and biometric data privacy regulations.

Bonus Capabilities

  • Experience building federated learning pipelines or synthetic data training tools.

  • Arabic fluency or prior work in GCC tech hubs (Qatar, UAE, Bahrain).

Are you excited about this opportunity?

Don’t miss the chance to make a difference in the fintech and FX industry!

👉 Apply now by clicking on the “Apply Now” button below.

Let’s shape the future of finance together!

#EmploySolutionJobs #FXCareers
#MiddleEastJobs #UAEFinance
#NowHiring #FinancialServices #FXIndustry.

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