About the Role: To lead a cross-disciplinary data science team to build from scratch:
User behaviour models
User Lifetime Value (LTV) prediction systems
Partner credit scoring systems
Anomaly detection and risk identification systems
Recommendation engines and user preference algorithms
To do more than analyse xe2x80x94 to enable the system to understand users, predict trends, manage risks, and unlock commercial potential in the B2B domain. Location: Town Responsibilities Strategy & Leadership
Develop a company-wide data science roadmap, defining the role and deliverables of the "data platform"
Build and lead a data science team (model development, data products, engineering support)
Drive productization of data capabilities to serve key departments such as product, operations, marketing, and risk management
Modelling & Algorithms
Design and deploy core predictive models including user LTV, risk assessment, and behaviour tagging
Participate in the design of anomaly detection, risk identification, and key account recognition algorithms
Establish A/B testing frameworks to evaluate model contributions to business growth
Data-Driven Product Design
Collaborate with product managers and developers to convert model outputs into features or recommendation systems
Deliver partner value modelling, personalized policy pricing, and strategic tools for the B2B segment
Foster a data-driven operations culture to shift from experience-based to evidence-based decision-making
Required
Master's degree or higher in Mathematics, Statistics, Computer Science, Economics, or related fields
Minimum 5 years of practical experience in data science or machine learning, including 2+ years in team leadership
Proficient in modelling techniques (clustering, regression, time series, Bayesian, graph models, etc.)
Able to independently design various models such as user profiling, lifecycle, recommendation, and risk control
Skilled in Python / R / SQL and familiar with modern data infrastructure (e.g., Airflow, Spark, Kafka)
Proven track record of deploying models that drive tangible business results (ROI, retention, conversion, etc.)
Preferred
Experience with high-user-volume platforms such as digital gaming, e-commerce, or finance
Deep understanding of real-time risk management, recommendation systems, VIP scoring, and anomaly detection
Engineering mindset with experience in productizing and deploying models to production
Knowledgeable in data intellectual property rights, security, and ethics (data as a core enterprise assetxefxbcx89
Education Master's degree or higher in Mathematics, Statistics, Computer Science, Economics, or related fields EA License No: 96C4864 CEI Reg No: R1873093 (LOH CHIANG SOON) '
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