jobs in Randstad Malaysia

Randstad Malaysia Hiring! Full Time Data Scientist (Up to 16k) in Federal Territory - Ricebowl

Data Scientist (Up to 16k)

Undisclosed

KL City, Federal Territory

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Working Location

  • Kuala Lumpur Federal Territory Malaysia

Job Description

Responsibilities

About The Company

The client is a leading life insurer in Malaysia going through a Digital Transformation. They need a highly skilled Data Scientist to join their team to build traditional ML models to improve insurance day to day business operations.

Key Responsibilities

  • End-to-End Model Development: Design, build, evaluate, and deploy predictive models using supervised and unsupervised learning techniques.
  • Predictive & Time Series Modeling: Develop time series forecasting and regression models to predict business outcomes, trends, and demand patterns.
  • Anomaly Detection & Classification: Build algorithms to detect operational anomalies, fraud, or system outliers while refining classification workflows.
  • Pipeline & Feature Engineering: Write clean, modular Python and SQL scripts to clean, transform, and extract high-value features from complex structured and unstructured datasets.
  • Framework Implementation: Leverage TensorFlow, PyTorch, and XGBoost to train, tune, and optimize machine learning and deep learning models for production readiness.
  • Stakeholder Collaboration: Translate complex business questions into quantitative frameworks and present analytical findings directly to technical leads and executive business stakeholders.

Qualifications

  • 4+ years of professional experience in a Data Scientist role, delivering end-to-end machine learning solutions in production environments.
  • Strong business acumen with a proven track record of translating business requirements into technical data science problems.
  • Solid background in model evaluation, hyperparameter tuning, and model lifecycle management.

Key Skills Required

  • Core Machine Learning: Predictive Analytics, Regression, Time Series Analysis, Classification, Supervised & Unsupervised Learning, Anomaly Detection.
  • Frameworks & Libraries: TensorFlow, PyTorch, XGBoost, Scikit-Learn.
  • Programming & Database: Advanced proficiency in Python and SQL.

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