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Grab is seeking a Data Scientist (Analytics) to join the OmniCommerce Analytics team. You will turn data into decisions across deals, reservations, loyalty, and CRM, partnering with product managers, data scientists, engineers, and stakeholders to run experiments and build dashboards that guide day-to-day product choices.
This high-ownership, high-learning role requires moving fast, closing knowledge gaps, and growing into an independent analytics partner for the team in a fast-paced environment.
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.
The OmniCommerce team is a close-knitted team with diverse backgrounds, sharing a common purpose - to build the best products to engage our customers online and offline. The team is bonded over the passion for building user-first products, driven by numbers and analytical thinking. The Analytics team's mission is to use data and experimentation to drive product and business innovation. We focus on providing data-driven insights to deliver an impeccable and seamless experience for our consumers, merchants, and driver-partners.
We are looking for a Data Scientist (Analytics) to join our OmniCommerce Analytics team and help turn data into decisions across deals, reservations, loyalty, and CRM - the products that drive offline footfall to our merchants. You will work closely with product managers, data scientists, engineers, and stakeholders to run experiments, surface insights, and build the dashboards and analyses that guide day-to-day product decisions. This is a high-ownership, high-learning role: you will be trusted to move fast, close your own knowledge gaps, and grow into an independent analytical partner for the team.
Product Analytics: Partner with the product, design, and engineering teams to derive insights, support experiment design, and inform key product decisions.
Strategic & Business Analytics: Support strategic initiatives with data analytics and insights, including deep-dives into customer and merchant behaviour, product efficacy, and ad-hoc projects.