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Applied Scientist AI​/ML

Job in Toronto, Ontario, C6A, Canada
Listing for: Opendoor
Full Time position
Listed on 2026-06-04
Job specializations:
  • IT/Tech
    Machine Learning/ ML Engineer, AI Engineer, Data Scientist, Artificial Intelligence
Salary/Wage Range or Industry Benchmark: 80000 - 100000 CAD Yearly CAD 80000.00 100000.00 YEAR
Job Description & How to Apply Below

About Opendoor

At Opendoor our mission is to tilt the world in favor of homeowners and those who aim to become one. Home ownership matters. It's how people build wealth, stability, and community. It's how families put down roots, how neighborhoods strengthen, how the future gets built. We're building the modern system of home ownership giving people the freedom to buy and sell on their own terms.

We’ve built an end-to-end online experience that has already helped thousands of people and we’re just getting started.

About

The Role

We’re looking for an Applied Scientist (ALL LEVELS) to push the boundaries of applied machine learning and AI le this role will have a significant impact on our valuation systems — ensuring we provide the most accurate and transparent pricing possible — the scope goes well beyond pricing. You’ll work across a range of challenging ML problems, from multi-modal modeling to operational optimization, helping us rethink how we use structured and unstructured data to make better decisions for our customers.

What

You'll Need
  • Strong software engineering and coding skills in Python, with experience contributing to production codebases
  • Experience developing and deploying ML models end-to-end — from research and prototyping to implementation in production systems
  • Hands-on experience with deep learning architectures, including Conv Nets, Transformers, or similar
  • Advanced degree (MS or PhD) in computer science, statistics, mathematics, or a related quantitative field
  • Solid foundation in statistics and experimental design
  • Strong communication and collaboration skills — you’re comfortable working with cross-functional stakeholders and can communicate technical ideas clearly
Nice to Have
  • Familiarity with Pyspark and distributed data processing
  • Background in search, recommendation systems, or personalization
  • Experience working with large language models (LLMs) or vision-language models (VLMs)
  • A genuine interest in real estate — no prior experience required, but you'll engage deeply with housing data
What You'll Do
  • Design and deploy architectural improvements to our deep neural network (DNN)-based home valuation models
  • Build interpretable ML models that can help us explain pricing decisions to customers
  • Incorporate unstructured data — like images, videos, or text — into our forecasting and valuation pipelines using cutting-edge AI models (LLMs, VLMs, etc.)
  • Collaborate with Engineering and Ops to enhance our human-in-the-loop pricing systems
  • Improve the feature engineering and model training pipelines that power our production systems
  • Rethink our risk and optimization models using real-world data and domain insight
  • We’re a small, nimble team — there’s ample opportunity to work across the entire research and modeling stack.
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