Lead Cyber Risk & Analytics Engineer

Cybcube · New York Office · FullTime

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About CyberCube:

CyberCube delivers the world's leading analytics to quantify cyber risk, translating one of the most critical risks of today and the future into financial impact for businesses, markets, and society.

As a key member of the Cyber Risk Modeling (CRM) team, you will research and analyze large, complex cybersecurity datasets to engineer analytical models for the insurance industry.

The CRM team builds cyber risk models that leading insurers and reinsurers rely on for single-risk and portfolio decisions. You will work closely with our Actuarial, Data Science, Data Engineering, and Application Engineering teams to take those models from research into production.

This is a quantitative modeling role with a cyber lens, not a hands-on security job. The cyber side informs the work; the core of the role is translating cyber principles into rigorous statistical models. We want someone quantitative and adaptable who is excited to work at the intersection of modeling, cyber, and insurance.

Responsibilities

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Extra Credit

Our Interview Process

We aim to be transparent and respectful of your time. The process is typically:

Why You'll Love It Here (US)

#LI-Hybrid, #LI-Onsite

AI Fluency at CyberCube

AI is reshaping how work gets done across every function. We value people who are curious about AI, eager to learn, and thoughtful about applying AI tools to work more effectively. AI fluency is part of how we assess every role in our hiring process.

Don't tick every box? Apply anyway.

Research shows the best candidates rarely match a job description point for point. If you're excited about this role and believe you could make an impact, we'd love to hear from you, even if your experience doesn't line up perfectly with everything listed above.

CyberCube Analytics, Inc. is an equal opportunity employer. We do not discriminate on the basis of age, gender, gender identity or expression, gender reassignment, sexual orientation, marital or civil partnership status, pregnancy or maternity, race, color, nationality, ethnicity, religion or belief, disability, veteran status, genetic information, or any other characteristic protected by applicable law.

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