Senior Data Scientist – Applied Machine Learning

Posted Yesterday
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Sydney, New South Wales, AUS
Hybrid
Senior level
Fintech • Software • Financial Services
The Role
Develop production-ready machine-learning solutions for propensity modeling, personalization, growth, retention, forecasting, and experimentation. Responsibilities span problem framing, feature engineering, model development, deployment, monitoring, retraining, and lifecycle maintenance. The role collaborates with engineers, product managers, analysts, and business stakeholders, while improving MLOps, data quality, model monitoring, and technical documentation. Generative and agentic AI may also be applied where appropriate.
Summary Generated by Built In
Company Description

Lendi Group is transforming the way Australians find, buy and own property. As the company behind Lendi — Australiaʼs original and #1 digital mortgage brand — and the iconic Aussie franchise network, we combine technology, distribution and deep property expertise to support customers across their entire property journey.

Powered by our proprietary AI platform and a national network of 1,300 brokers and 220 retail stores, Lendi Group now manages a $107B+ loan book and continues to set the pace in the industry, recently recognised as Aggregator of the Year.

Through our integrated Find–Buy–Own ecosystem and industry-leading Agentic platform, weʼre redefining how property decisions are made — delivering greater confidence, speed and simplicity for customers.

This role sits at the centre of that next phase of growth.

To learn more about life at Lendi Group check out our blog: https://www.lendi.com.au/inspire/category/life-at-lendi/

  • Innovation at Our Core – We challenge the status quo and push boundaries to create better solutions, with a goal of becoming AI-native by June 2026.
  • Work with the Best – Collaborate with some of the brightest minds in fintech, financial services, and strategy.
  • Make an Impact – Contribute to meaningful projects that shape our business and the future of property finance.
  • Grow & Evolve – Develop your skills and advance your career in a fast-moving, purpose-driven environment.

About the role

Lendi Group is building data and AI capabilities that help customers make better decisions across home lending and related property services.

As a Senior Data Scientist, you will turn complex customer and business problems into practical, production-ready machine-learning solutions. You will work across propensity modelling, personalisation, growth, retention and other applied data-science use cases, using techniques such as classification, regression, experimentation and predictive analytics.

This is a hands-on role covering the full lifecycle: framing the problem, understanding the data, developing features and models, deploying solutions, monitoring performance and improving them over time. You will work closely with data engineers, product managers, analysts, software engineers and business stakeholders to deliver measurable outcomes.

Generative and agentic AI will form part of the team’s evolving toolkit, where it is the right solution to the problem. The core of the role is strong applied machine learning and sound data-science judgement.

Job Description

  • Translate customer and business problems into clear analytical and machine-learning objectives.
  • Work with large datasets, event data and feature stores to identify useful signals and build predictive features.
  • Develop, evaluate and improve models for use cases such as propensity, personalisation, growth and retention.
  • Apply appropriate techniques across classification, regression, experimentation, forecasting and other applied data-science problems.
  • Take models through the full product lifecycle, including deployment, automation, monitoring, retraining and ongoing maintenance.
  • Help improve data quality, feature pipelines, model monitoring, drift detection and ML Ops practices.
  • Work with product managers and business stakeholders to define success measures and translate model outputs into action.
  • Explain technical approaches, assumptions and results clearly to technical and non-technical audiences.
  • Collaborate with data, software and AI engineering teams to review solutions, improve coding standards and share knowledge.
  • Contribute to technical documentation, design discussions and delivery planning.
  • Work with external partners or vendors where required to deliver the right solution.

Qualifications

  • Commercial experience as a Data Scientist, Applied Scientist, Machine Learning Engineer or in a closely related role.
  • Strong Python skills and experience writing maintainable, tested and production-quality code.
  • Strong foundations in probability, statistics, model evaluation and machine-learning fundamentals.
  • Practical experience with classification, regression, feature engineering and experimentation.
  • Experience developing, deploying and maintaining machine-learning models in a cloud environment such as Databricks, AWS SageMaker, Azure ML or an equivalent platform.
  • An understanding of data pipelines, feature stores, data quality, model monitoring, drift and retraining.
  • Experience working across the full model lifecycle, from problem definition through to production and ongoing improvement.
  • The ability to work effectively with product managers, engineers, analysts and senior business stakeholders.
  • A collaborative approach to code reviews, documentation, knowledge sharing and continuous improvement.
  • Good judgement about when to use a simple, explainable approach and when a more advanced technique is justified.

It would be useful if you also have

  • Experience with generative AI, large language models or agentic AI applications.
  • Experience with recommendation systems, personalisation or customer propensity modelling.
  • Experience with natural language processing, time-series forecasting or financial modelling.
  • Experience with MLflow, Git-based CI/CD, dbt or related data and ML engineering practices.
  • Experience with R or Scala.
  • Experience presenting data and model outputs using tools such as Streamlit, Power BI or Tableau.

Additional Information

Lendi Group teams operate across Australia and the Philippines. Bringing together diverse expertise, innovative technology and a customer-first approach, our teams work seamlessly to simplify the property journey, helping Australians find, buy and own property with confidence.

We support our people in a variety of ways, but a few of the benefits that our people rave about include:

  • A vibrant, relaxed, yet professional culture.
  • Hybrid working arrangement designed to support work-life balance, while fostering meaningful connection and collaboration.
  • A holistic wellbeing programs offering 24/7 support, including medical, mental health, and financial wellbeing services to enable our workforce to thrive at home and work.
  • Generous paid Parental Leave: we celebrate our growing Lendi Group family with 18-26 weeks leave for primary carers and up to 4 weeks for secondary carers.
  • An additional week’s Loyalty Leave each year after reaching 3 years’ service.
  • Wellness initiatives with a strong focus on psychological safety.

We’re committed to fostering a diverse and inclusive community at Lendi Group. We believe that a team reflecting the world around us leads to greater innovation, stronger collaboration, and a more engaging workplace.

Our culture is guided by our 3 core values: We Are Stronger United; Act Like You Own It; and Keep Home Loans Human. Our values are part of our core DNA that helps Lendi Group to attract, engage and evolve the right talent and build best-in-class products.

This is an opportunity to shape the future of a fast-growing, purpose-driven company that’s transforming the homeownership journey.

Ready to contribute to Lendi Group’s next chapter? Apply now and be part of something big!

#lendigroup #LI-AMH1 #LI-hybrid

Skills Required

  • Commercial experience as a Data Scientist, Applied Scientist, Machine Learning Engineer, or closely related professional
  • Strong Python skills and experience writing maintainable, tested, production-quality code
  • Strong foundations in probability, statistics, model evaluation, and machine-learning fundamentals
  • Practical experience with classification, regression, feature engineering, and experimentation
  • Experience developing, deploying, and maintaining machine-learning models in a cloud environment such as Databricks, AWS SageMaker, Azure ML, or equivalent
  • Understanding of data pipelines, feature stores, data quality, model monitoring, drift, and retraining
  • Experience across the full model lifecycle from problem definition through production and ongoing improvement
  • Ability to work effectively with product managers, engineers, analysts, and senior business stakeholders
  • Collaborative approach to code reviews, documentation, knowledge sharing, and continuous improvement
  • Good judgment about when to use simple, explainable approaches versus advanced techniques
  • Experience with generative AI, large language models, or agentic AI applications
  • Experience with recommendation systems, personalization, or customer propensity modeling
  • Experience with natural language processing, time-series forecasting, or financial modeling
  • Experience with MLflow, Git-based CI/CD, dbt, or related data and ML engineering practices
  • Experience with R or Scala
  • Experience presenting data and model outputs using Streamlit, Power BI, or Tableau
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The Company
HQ: Sydney, Sydney
2,432 Employees
Year Founded: 2021

What We Do

We are one of Australia’s fastest growing fintechs, building market leading technology to transform the home loan industry through our powerhouse property lending brands and networks - Aussie and Lendi. Lendi Group exists to transform the stressful, disjointed and sometimes overwhelming journey of financing a property into a friction-free experience for everyone involved. Our cross-functional team of super smart experts and brokers power our brands, products, services, relationships and platforms to help more Australians secure their property dreams, seamlessly. With a shared history of challenging the status quo, our brands provide different experiences for customers but the endgame is always to help more Australians achieve their home ownership dreams.

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