Data Scientist

Hybrid
Mid-level
🇲🇾 Malaysia
Data Scientist
Data science & Analytics

Get to know the Role

You will be working closely with various teams within a business line (Product, Business, Engineering, Design and Data Science) to understand data requirements, identify and track key metrics, and provide data-driven insights. You will also work with stakeholders to evaluate the feasibility of new business/product ideas and provide appropriate recommendations.

The Day-to-Day Activities

  • Understand business objectives and deepdive into existing data to recommend new product ideas to solve for the most impactful customer problems
  • Use data to identify trends, spot anomalies and delve deeper into their root causes
  • Use your number-crunching and slide-maker skills to use and present data beyond just numbers. Hone your data storytelling skills through visualisation techniques by building dashboards and presenting insights to a non-technical audience!
  • Discuss and align with stakeholders on key product metrics, design and propose experimentation strategies
  • Launch A/B tests, analyze experiment results and provide recommendations
  • Design and own frontend and backend data specs for new products, while collaborating with engineering teams to ensure accurate and timely data collection
  • Develop and maintain data pipelines to fulfill product reporting requirements
  • Mentor junior team members, supporting their professional development in both hard and soft skills
  • Identify frequently occurring hypotheses and problem statements that can be generalised into common patterns. Develop scalable analytical frameworks and solutions to allow for solving repetitive problems in a more efficient manner
  • Role-model high standards of rigour in how we do measurements, experimentation, analyses and recommendations. Safeguard the integrity of how data is used and understood to ensure we maintain objectivity in our reasoning, actions and decision making
  • Evaluate the feasibility of developing new products, participate in user researches to validate customer problems

Requirements

The Must-Haves

  • 2-4 years of experience working in data-related and/or quantitative fields, including but not limited to Analytics and Applied Data Science
  • Fluent with SQL, Python, R or other scripting/programming languages to problem-solve. Experienced with working with very large datasets
  • Strong data visualization and storytelling skills. Experience in creating dashboards using Tableau or other visualization tools. Knowledge of Azure toolstack (Databricks, PowerBI, Azure Data Explorer) will be a plus
  • Effective communication and collaboration skills and the ability to present complex subjects coherently to diverse audiences comprising generalists and specialists
  • Self-motivator and an ability to learn independently
  • Ability to deliver on tight timelines and move quickly with cross-functional teams to partner or lead decision making while maintaining high attention to detail
  • A culture role model of our 4Hs: Honour, Humility, Hunger and Heart

The Nice-to-Haves

  • Relevant industry experience (preferably in an Internet or ‘Direct to Consumer’ company with high velocity data and scaled controlled experiments) and/or prior experience with Product Management or business-facing operations will be a plus
  • Relevant industry experience - advertising tech (Adserver, SSP, DSP, etc)
  • Experience with designing and concluding controlled A/B experiments
  • Prior experience with supervised (eg : predictive modeling - regressions/classifications) and unsupervised (eg : clustering, segmentation) ML algorithms

 

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