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Gen Digital Inc. is seeking a hands‑on AI/ML Engineer to frame business problems, develop models, run experiments, and bring models into production across customer journeys and billing lifecycles.
You will own end-to-end ML initiatives, collaborate with cross‑functional teams, and contribute to MLOps, experimentation, and model iteration in a fast‑paced AI transformation.
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.
Our team is a core part of Gen’s AI transformation. We build machine learning systems that directly improve customer growth, retention, personalization, pricing, recommendations, billing success, and long-term customer value across a large global consumer portfolio.
This role focuses on applied machine learning, experimentation, and business-impact modeling. You will build practical models that personalize customer decisions across in-app messages, email, portals, billing flows, and lifecycle journeys.
We are looking for a hands‑on AI / Machine Learning Engineer who can frame business problems, build models, design experiments, measure impact rigorously, and partner with engineering and product teams to bring models into production. Experience with recommender systems, uplift modeling, contextual bandits, pricing, or lifecycle personalization is a strong plus.
Degree requirements are flexible. A technical degree in Computer Science, Data Science, Statistics, Mathematics, Operations Research, Economics, Engineering, or a related field is helpful, but equivalent practical experience is equally valued.
A Master’s or PhD in a quantitative field is a plus, but not required.
Our hiring process includes the following steps:
1. Video Introduction: Submit a brief video introducing yourself, your work, and your most relevant experience.
2. Technical interview: Demonstrate your applied machine learning, analytical, and engineering capabilities.
3. Hiring manager interview: Meet with the hiring manager to discuss your background and fit for the role.
4. Final interview: Meet with our AI leadership, including the Chief AI Officer, for a final assessment.