Data Scientist II

Posted 8 Days Ago
Be an Early Applicant
Hiring Remotely in India
Remote
Mid level
Software
The Role
Build, deploy, and maintain ML and optimization models for a quick-commerce marketplace (matching, pricing, recommendations, ETA). Design experiments and causal analyses, engineer features from messy geospatial and conversational data, own production ML pipelines, monitor model health, and collaborate cross-functionally to deliver reliable, incremental improvements.
Summary Generated by Built In
Who Are We❓

Welcome to the world of Mrsool! 🌍✨ Where on-demand delivery meets unparalleled user needs to deliver anything you desire. As one of the largest delivery platforms in the Middle East and North Africa (MENA) region, Mrsool has captivated users with its unique and seamless experience, earning it the highest ratings among all major delivery platforms on both Apple's App Store and Google's Play Store. 🌟📲

What sets Mrsool apart is its commitment to providing an unmatched "order anything from anywhere" experience. 🌐📦 This extraordinary feat is made possible by our extensive fleet of dedicated on-demand couriers. With their unwavering dedication, they ensure that your desired items reach your doorstep, no matter where you are. 🚗🚲

Whether it's a late-night craving, a forgotten item, or a special gift for a loved one, Mrsool is here to deliver, quite literally. 😋🎁 We take pride in the convenience we offer, empowering you to get what you need when you need it, all at the tap of a button. 💪🏼💫

The Job in a Nutshell💡

We are seeking a Data Scientist II (DS-2) to join our core data science team. In this role, you will build and ship models that power Mrsool's quick-commerce marketplace, owning well-scoped problems end-to-end — from analysis and experimentation through to production. You will work closely with cross-functional teams and senior data scientists to deliver robust, data-driven solutions. This position offers an opportunity to grow your craft on high-impact problems and contribute directly to the growth and success of the organization.

What You Will Do💡
  • Marketplace Modelling: Build and maintain ML and optimisation models across the quick-commerce stack — supply-demand matching, dynamic and surge pricing, recommendations, ETA prediction, and broader marketplace optimisation.
  • Butler & Conversational AI: Contribute to the AI behind Butler, Mrsool's distinctive conversational ordering experience — modelling customer intent from free-form, unstructured requests (text, voice, images) and mapping it to fulfillable, well-priced orders.
  • Experimentation & Causal Inference: Design and run experiments (A/B and quasi-experimental) across pricing, matching, recommendations, and Butler, and turn noisy marketplace data into decisions stakeholders can act on.
  • Feature Engineering & Data Craft: Engineer high-signal features from messy, real-world data — order events, courier traces, geospatial signals, pricing configs, and conversational text/voice — as a core, ongoing part of the role.
  • Production ML: Own your models through their lifecycle — data pipelines, training, deployment, monitoring, and retraining — and respond when a model or config drifts.
  • Cross-Functional Collaboration: Collaborate effectively with product managers, engineers, DevOps, operations, and other squads to deliver seamless, data-driven experiences and to help diagnose live issues (e.g. mispriced brackets, elevated failure rates in a city).
  • Operational Excellence: Proactively monitor model and metric health, instrument your work with proper logging and observability, and contribute to reliable, repeatable analysis and deployment practices.
  • Continuous Improvement: Identify opportunities to improve measurement, modelling, and process; favour small, incremental changes that compound over time.

RequirementsWhat Are We Looking For❓
  • Years of Experience: 3 to 4 years of non-internship professional data science or ML experience in fast-paced product startups or high-scale tech enterprises.
  • Experimentation & Causal Inference: Solid command of A/B test design, power analysis, and quasi-experimental methods (diff-in-diff, instrumental variables, synthetic control), including awareness of interference in marketplace/network settings.
  • ML & Optimisation Depth: Strong grounding in forecasting and at least one of operations research / reinforcement learning applied to allocation, matching, or pricing problems.
  • Feature Engineering: Proven ability to build, select, and maintain features from large, messy, real-world data.
  • Production Engineering: Comfortable deploying, monitoring, and maintaining ML pipelines, with the engineering discipline to keep models reliable in production.
  • Technical Toolkit: Fluent in Python and SQL, with the ability to work efficiently against large-scale data.
  • Problem-Solving Mindset: A knack for thinking from first principles and a track record of delivering high-quality work while balancing trade-offs like reliability, latency, and interpretability.
  • Iterative Mindset: A bias towards shipping early and iterating; a belief in small, incremental changes over large, multi-quarter undertakings.
  • Education: Bachelor's/Master's degree in Computer Science, Statistics, Engineering, or an equivalent quantitative field.
Who Will Excel❓
  • Data scientists with hands-on experience in quick commerce, marketplaces, logistics, ride-hailing, or on-demand delivery, who understand two-sided supply/demand dynamics.
  • Those with NLP / LLM experience — intent classification, entity extraction, embeddings, or conversational/voice data — directly relevant to Butler.
  • Engineers comfortable with streaming/big-data tooling (Spark, Kafka) and real-time inference.
  • High-agency individuals who treat their models as products and collaborate well across conflicting perspectives.

BenefitsWhat We Offer You❗
  • Inclusive and Diverse Environment: We foster an inclusive and diverse workplace that values innovation and offers remote environments.
  • Competitive Compensation: Our compensation packages are highly competitive and include potential share options for certain roles.
  • Personal Growth and Development: We are committed to your personal and professional growth, providing regular training and an annual learning stipend to help you advance your career in a dynamic environment.
  • Autonomy and Mentorship: You'll enjoy a high degree of autonomy in your role, supported by mentorship and ambitious goals that pave the way for both your success and the company's growth.

Skills Required

  • 3-4 years of professional data science or ML experience (non-internship)
  • A/B test design, power analysis, and quasi-experimental methods (diff-in-diff, IV, synthetic control); aware of interference in marketplaces
  • Strong grounding in forecasting and at least one of operations research or reinforcement learning applied to allocation, matching, or pricing
  • Proven ability to build, select, and maintain features from large, messy, real-world data
  • Deploying, monitoring, and maintaining ML pipelines in production; respond to model drift
  • Fluent in Python and SQL
  • Bachelor's or Master's degree in Computer Science, Statistics, Engineering, or equivalent quantitative field
  • Experience with streaming / big-data tooling (Spark, Kafka) and real-time inference
  • NLP / LLM experience (intent classification, entity extraction, embeddings, conversational/voice data)
  • Experience in quick commerce, marketplaces, logistics, ride-hailing, or on-demand delivery (two-sided dynamics)
  • High-agency, collaborative, iterative mindset (bias toward shipping and small improvements)
Am I A Good Fit?
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The Company
HQ: Riyadh
1,843 Employees
Year Founded: 2015

What We Do

Established in 2015, Mrsool grew rapidly over the past few years, by the time it closed series A in early 2019, the on-demand delivery platform has processed over 1 billion Riyals, serving over 10 million users across all the cities of the Saudi kingdom. The platform pioneered the on-demand service fulfillment model in the region, by establishing a massive customer-to-customer network through a generic chat-based ordering experience, allowing users to be creative and unconstrained in describing the service needed, and giving the couriers the option to bid with their price they see fit, ensuring a fully scalable and self-regulating model.

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