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Senior Machine Learning Engineer (Fulfillment)

GrabTaxi Holdings Pte. Ltd.

Singapore

On-site

SGD 80,000 - 120,000

Full time

3 days ago
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Job summary

A leading Southeast Asian superapp company is looking for a Senior Data Scientist to optimize fulfilment strategies in Singapore. In this role, you will design and implement advanced machine learning models and predictive systems to enhance operational efficiency. A Master's degree in a relevant field and experience in reinforcement learning are essential. Join a vibrant team focused on driving technological advancements in Southeast Asia, while benefiting from flexible work arrangements and comprehensive healthcare support.

Benefits

Term Life Insurance
Comprehensive Medical Insurance
Flexible benefits package (GrabFlex)
Parental and Birthday leave
Volunteering leave through Love-all-Serve-all
Grabber Assistance Programme

Qualifications

  • At least 2 years of relevant experience in a related field.
  • Experience developing ML models incorporating online learning.
  • Familiarity with distributed computing systems.

Responsibilities

  • Design and implement cross-system strategies for operational efficiency.
  • Build advanced deep learning models for dynamic marketplace conditions.
  • Collaborate with engineers to integrate models into production systems.

Skills

Reinforcement Learning
Behavioural Modelling
Optimisation Under Uncertainty
Fluent in Python
Experience with ML frameworks (PyTorch, TensorFlow)
ML frameworks (e.g., PyTorch, TensorFlow)
Distributed Computing (e.g., Spark, Ray)

Education

Master's degree in Computer Science, Operations Research or Applied Mathematics

Tools

Spark
Ray
Job description
About Grab and Our Workplace

Grab is Southeast Asia's leading superapp. From getting your favourite meals delivered to helping you manage your finances and getting around town hassle‑free, we've got your back with everything. In Grab, purpose gives us joy and habits build excellence, while harnessing the power of Technology and AI to deliver the mission of driving Southeast Asia forward by economically empowering everyone, with heart, hunger, honour, and humility.

Get to Know the Team

The Fulfilment Tech Family is a foundational part of Grab, enabling seamless coordination between our diverse marketplaces across Southeast Asia. We design real‑time, distributed systems and machine learning solutions to process hundreds of millions of requests per day, driving efficient supply allocation, pricing, and order matching. Our mission:

  • Deliver best‑in‑class products for our driver‑partners.
  • Maximise efficiency in fulfilling consumer demand – rain or shine.
  • Create sustainable, efficient marketplaces that balance experience and cost for all stakeholders.

We're looking for a Senior Data Scientist to join our Fulfilment team and take the lead in Fulfilment strategy optimisation – bringing existing optimisation and automation of our pricing, dispatch and supply management policies to the next level.

Get to Know the Role

You’ll optimise cross‑system fulfilment strategies, and lead model development with user and driver behavioural prediction, optimisation and reinforcement learning (RL) techniques. Your primary objective will be to enhance marketplace operations by constructing interpretable, adaptable multi‑agent RL systems or decision agents that can manage diverse objectives and disruptions.

You’ll report to the Head of Data Science and work onsite at Grab's One North Singapore office.

The Critical Tasks You Will Perform
  • You’ll design and implement cross‑system strategies to improve operational efficiency in fulfilling user demands and boosting driving utilisation.
  • You’ll build advanced DL and LLM models to capture the spatial‑temporal patterns of dynamic marketplace conditions.
  • You’ll develop advanced ML/DL models to predict user and driver behaviours, and use the behavioural insights to inform decision‑making and platform interventions.
  • You’ll build and deploy interpretable, adaptable optimisation models, RL systems or decision agents, that can handle multi‑objectives and real‑world disruptions.
  • You’ll collaborate with machine learning engineers and backend engineers to integrate the ML/DL, optimisation or RL models into real‑time production systems.
  • You’ll create technical documents outlining the methodologies and findings of your work. You’ll also present solutions to non‑technical stakeholders.
What Essential Skills You Will Need
  • You hold a Master degree in Computer Science, Operations Research, Applied Mathematics, or a related field with at least 2 years of relevant experience.
  • You have professional experience or academic publications in Reinforcement Learning, Stochastic Control, Behavioural Modelling, Optimisation Under Uncertainty.
  • You have experience developing and deploying ML models that incorporate online learning, Markov Decision Processes, or simulation‑based optimisation.
  • You are fluent in Python and ML frameworks (e.g., PyTorch, TensorFlow).
  • You are familiar with distributed computing systems or scalable training platforms (e.g., Spark, Ray).
  • You can explore new ideas and learn new skills to accomplish tasks.
Life at Grab

We care about your well‑being at Grab, here are some of the global benefits we offer:

  • We have your back with Term Life Insurance and comprehensive Medical Insurance.
  • With GrabFlex, create a benefits package that suits your needs and aspirations.
  • Celebrate moments that matter in life with loved ones through Parental and Birthday leave, and give back to your communities through Love-all-Serve-all (LASA) volunteering leave
  • We have a confidential Grabber Assistance Programme to guide and uplift you and your loved ones through life's challenges.
  • Balancing personal commitments and life's demands are made easier with our FlexWork arrangements such as differentiated hours
What We Stand For at Grab

We are committed to building an inclusive and equitable workplace that enables diverse Grabbers to grow and perform at their best. As an equal opportunity employer, we consider all candidates fairly and equally regardless of nationality, ethnicity, religion, age, gender identity, sexual orientation, family commitments, physical and mental impairments or disabilities, and other attributes that make them unique.

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