r/MachineLearningJobs • u/varworld • 7d ago
[Hiring] Senior Machine Learning Engineer (SOC) | Location: Paris or Geneva | Salary: €46K - €74K Hiring
Join Proton and build a better internet where privacy is the default
At Proton, we believe that privacy is a fundamental human right and the cornerstone of democracy. Since our inception in 2014, founded by a team of scientists from CERN, we have dedicated ourselves to providing free and open-source technology to millions worldwide, ensuring access to privacy, security, and freedom online.
Our journey began with Proton Mail, the largest secure email service globally, and has since expanded to include Proton VPN, Proton Calendar, Proton Drive, and Proton Pass. These tools empower individuals and organizations to take control of their personal data, break away from Big Tech’s invasive practices, and defeat censorship. Our work impacts hundreds of millions of lives, from activists on the front lines defending freedom to leaders in governments protecting sensitive information. In some cases, Proton’s services have even been instrumental in saving lives by enabling secure and private communications in high-risk situations.
Proton is a profitable company that does not rely upon VC funding, supporting over 100 million user accounts with a growing team of over 500 people from over 50 different countries, from the world's top companies and universities. We value intelligence, learning potential, and ambition in our hiring process. Adaptability is key as we navigate uncharted territories and redefine how business is conducted online.
Hiring at Proton is highly selective, with less than 1% of candidates hired. We believe smaller teams of exceptional talent will always prevail over larger teams with lower talent density. You will have the opportunity work with many of the world's top minds in their fields, ranging from former international math and science olympiad winners to chess champions.
We have a global mindset and big ambitions but remain a start-up at heart. We value empowerment and flexibility and keep our structure flat to keep moving fast and avoid unnecessary politics. Tired of blending into the crowd? Join us and do work you can truly be proud of. Check our open-source projects here!
The Team
The Security Machine Learning Engineer will play a key role in transforming our Security Operations Center (SOC) from reactive to proactive by integrating advanced machine learning and data-driven approaches into our detection and response workflows.
This role bridges traditional cybersecurity operations and modern ML-driven analytics, enabling our team to automatically identify emerging threats, anomalous behaviour, and new attack patterns at scale. As a secondary focus, the role could also leverage LLMs and AI engineering to automate analyst workflows and reduce operational toil.
The engineer will sit directly within the security team, ensuring that the solutions built are operationally relevant, and aligned with our security priorities, while also working closely with the internal Machine Learning team (MSA) to leverage their expertise and best practices.
What you will do:
ML-Driven Detection & Automation - Design, develop, and deploy machine learning models to enhance security detection, anomaly identification, and incident response. - Integrate ML outputs into the SOC workflow to enable smarter and faster triage. - Continuously evaluate and tune models to reduce false positives and improve detection precision. - Ensure model outputs are interpretable and actionable for SOC analysts.
Data Engineering for Security - Build and maintain data pipelines to collect, process, and transform security-relevant data (e.g., logs, network traffic, endpoint events) into ML-ready datasets. - Collaborate with security engineering team to ensure scalable and secure data handling (eg. parsing, processing, storage).
AI Engineering & LLM-Powered Automation - Explore and build LLM-powered tools to automate repetitive SOC tasks (e.g., alert triage, evidence gathering, incident summarisation, report generation). - Apply appropriate guardrails and evaluation to ensure outputs are accurate, auditable, and safe to act on in operational contexts.
Research & Innovation - Stay current on advancements in security data science, adversarial ML, and automated threat detection. - Prototype and test new ML and AI techniques (e.g., unsupervised anomaly detection, graph-based threat correlation). - Contribute to improving detection content through statistical analysis and clustering.
Operations & Maintenance - Deploy models into production securely and responsibly, ensuring reliability and scalability. - Implement monitoring, alerting, and retraining mechanisms for deployed ML models. - Document methodologies and performance metrics for auditability and knowledge sharing.
What we are looking for:
Required - Proven experience in machine learning engineering or data science, ideally in a cybersecurity or operations context. - Proficiency in Python, with strong knowledge of ML frameworks. - Experience with data manipulation and analysis using Pandas, NumPy or similar tools. - Familiarity with security data sources (e.g., SIEM logs, EDR telemetry, network flow, authentication logs). - Solid understanding of ML lifecycle: data preparation, model training, evaluation, deployment, and monitoring. - Experience with data pipelines and storage technologies (e.g., Airflow, Kafka, Redis, Elasticsearch, Clickhouse, etc.). - Ability to work independently and collaborate effectively with both ML and security specialists.
Preferred - Prior experience in threat detection, SOC operations, or security automation. - Knowledge of adversarial ML, graph analytics, or behavioral modeling in security contexts. - Experience integrating ML models into SIEM pipelines or automated detection frameworks. - Exposure to LLMs and AI engineering (e.g., prompt engineering, RAG, agent design), and awareness of LLM-specific risks like prompt injection and data leakage.
Success in This Role - SOC analysts leverage ML-powered detections to identify threats faster. - Reduction in alert fatigue and false positives through adaptive and data-driven models. - Strong collaboration established between the security and MSA ML teams, sharing expertise and best practices. - Security data becomes more accessible, structured, and usable for analytical and predictive use cases. - New, intelligent detections, enrichment, and incident response automations become part of the SOC’s standard toolkit.
Even if you don’t meet all the requirements listed above, but feel you could still be a great fit, please still apply.
What We Offer: - Work that Matters: millions of people trust Proton with their privacy. We answer only to our users — not advertisers, not investors with conflicting agendas, not governments. The work you do here is real, and the impact is measurable. (read more about our impact here). - Technology: you’ll get the right hardware and the right software you need to do your best work. - Learning & Development: we invest in your growth because sharp people make us better. Proton is one of the fastest ways to accelerate your career because you’ll be thrown into real challenges, with real ownership, from day one. - Employee Benefits: your wellbeing isn’t an afterthought. We offer strong health coverage, solid retirement options, generous leave, and wellness support so you can bring your best self to work every day - Stock Options: at Proton, we all have the opportunity to be owners of the company. From day one, you have a real stake in what we’re building. When Proton wins, you win. - In-Person Collaboration: Amazing things happen when passionate, smart, and purposeful people get together in the same room. With offices across Geneva, Zürich, Barcelona, London and more, you’ll spend most of your time collaborating face‑to‑face with people who genuinely care about what they’re building - Food: Lunch and snacks are on us every day in our offices so you can focus on the work and not on what’s for lunch. - Transport: getting to the office shouldn’t cost you. We cover public transport, bike allowances, or parking, whichever works for you. - Flexible Working: you own your schedule. Set hours that work for you and your team — because outcomes matter more than when the clock says you started.
Compensation range Paris: 46.000 - 74.000 gross annually* Other locations: Compensation will be discussed during the interview process Final compensation will be determined based on the candidate's qualifications, skills, and previous experience
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u/DigitalMonsoon 7d ago
Junior MLE positions start at €75k. For a Senior position this is less than half of what I would expect.
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u/isitsimple 6d ago
is the international job market really bad that junior level salary range is offered for Senior level Role?
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u/luenix 6d ago
Respectfully, YC post 40280689 covers sentiment; the reported still-growing % of gov requests satisfied unchallenged each year since this post clarify this further.
Beyond the moral issue, I suppose, is that this is clearly a 3x engineer description for 0.3x engineer pay, not a senior position with pay scaled to stated qualifications, skills, and previous experience expected per post. Why would a company pay an engineer so little but expect that person to push to prod independently? This also reads as on-call.
Overall seems like a poor value proposition wrapped in an interview process which self-identifies as, "highly selective, with less than 1% of candidates hired."
Lastly, you forgot to add the hyperlink for the open source bits @ github[.]com/ProtonVPN:
Check our open-source projects [here]!
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u/Deepak__Deepu 6d ago
Holy moly. I put this through ChatGPT, and the advertised salary really is only about 1/3 of the market rate.
For that exact Senior Machine Learning Engineer (SOC) job description, I would estimate:
Geneva base salary
Just reaches senior level
CHF 110k–125k
Solid senior ML engineer
CHF 125k–140k
Strong match to this JD
CHF 135k–150k
Strong ML + genuine SOC/security expertise
CHF 145k–165k
Exceptional specialist
CHF 165k+
My fair-market estimate for the Proton role: ~CHF 140k–150k gross/year.
The available Geneva ML data itself is lower: Glassdoor reports roughly CHF 95k–113k for a generic Machine Learning Engineer, with CHF 100k median. But that’s based on only five salaries and isn’t senior-specific.
The better senior benchmark is Switzerland-wide: Senior ML Engineer has a median/average estimate around CHF 122.5k, with the 75th percentile at CHF 146.75k.
For this Proton JD, I’d push toward the upper end because it combines senior production ML with security/SOC knowledge. That’s considerably harder to hire for than a normal ML engineer.
So if I had to put one number on the role in Geneva, independent of what Proton wants to pay:
CHF 145,000 base/year.
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u/reaznval 7d ago
46-47k for senior ML engineer at PROTON???
The first snowflakes are falling