
Posted 3 months ago
Senior Machine Learning Engineer
AI Summary
Senior Machine Learning Engineer who designs, builds, and maintains machine learning systems and models in production, framing business problems and leading automation and optimization of ML workflows.
About this role
About Gen
Gen is a global company dedicated to powering Digital Freedom through its trusted consumer brands including Norton, Avast, LifeLock, MoneyLion and more. Our combined heritage is rooted in financial empowerment and cyber safety for the first digital generations, and today we deliver award-winning cybersecurity, online privacy, identity protection and financial wellness solutions to nearly 500 million users in more than 150 countries.
Together, we share a collective passion and vision to protect consumers and help them grow, manage and secure their digital and financial lives. We’re always looking for smart, fearless and high-impact talent who see AI as a teammate – leveraging it to move faster and deliver meaningful results.
When you’re part of Gen, you’ll have the flexibility, tools and support to do your best work and grow your career – from flexible working options and time off to competitive pay, benefits and well-being programs.
At Gen, we are scrappy and relentlessly customer driven. We create room for healthy debate, experimentation and continuous learning, and we seek out people with different experiences, identities and ideas to join our team. You’ll work with people who back each other, respect each other and understand that our differences are a competitive advantage.
If this sounds like you, we’d love you to be part of Gen.
About the Role
The Kuala Lumpur office is the technology powerhouse of MoneyLion. We pride ourselves on innovative initiatives and thrive in a fast paced and challenging environment. Join our multicultural team of visionaries and industry rebels in disrupting the traditional finance industry!
We are looking for a Machine Learning Engineer who is technically proficient in programming to build machine learning systems and maintain high performing machine learning models in production. Designing machine learning systems requires that you, as the machine learning engineer, is able to frame business problems and design machine learning solutions that can effectively bring value to the company. You will prototype, implement and experiment with machine learning methods to solve business use cases. You will lead efforts to automate, architect and optimise machine learning processes and workflows. You will also help define, execute and enforce best practices for test-driven model development processes for the entire Data Science team in MoneyLion.
Key Responsibilities
Able to frame and contextualize machine learning problems
Research, build and design machine learning systems and models that can solve business problems
Assess, understand and analyse data to select appropriate datasets for data modelling and testing
Identify, prototype and implement appropriate machine learning algorithms and tools to improve our products
Design, execute and monitor machine learning model experiments and metrics
Perform statistical analysis to evaluate and prove business impact of modelling improvements
Automate, architect and orchestrate machine learning processes and pipelines
Monitor, optimise and maintain machine learning solutions in production
Enrich existing machine learning libraries and model development frameworks to empower model development in MoneyLion
Work with MLOps Engineers and Data Scientists to improve systems designs and architectures
Enforce test-driven development and advocate engineering best practices to reduce technical debt in machine learning systems
Develop tools and internal libraries to facilitate model governance over the machine learning development lifecycle
About You
3 - 5 years of experience in machine learning
Strong mathematical, statistical or actuarial background
Good programming knowledge and software engineering skills
Must have hands on experience in machine learning, predictive analytics and statistical modelling
Experience developing and deploying machine learning models in production.
Adept at problem solving and troubleshooting using both textbook methods and novel viewpoints
Proficient in Python and SQL
Proficient with machine learning libraries and frameworks such as scikit-learn, XGBoost, LightGBM
Preferably have experience in building machine learning systems and workflows
Preferably familiar and have experience with MLOps tools such as DVC, MLFlow, Metaflow, Seldon, BentoML
Preferably familiar and have experience with AWS, Docker, Kubernetes.
Solid communication and collaboration skills.
What’s Next
TA Screening Call
Take-Home Assessment
Interview & discussion of Take-Home Assessment with the Hiring Manager (F2F)
Skills
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