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Machine Learning Engineer

unlimited holidays
Remote: 
Full Remote
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Offer summary

Qualifications:

B.S., M.S. or Ph.D. in Computer Science or related field, or relevant work experience., 8+ years of experience in machine learning or data science, with at least 3 years in a senior role., Deep understanding of supervised/unsupervised learning techniques and LLMs., Strong experience in writing efficient data pipelines and building end-to-end ML workflows..

Key responsabilities:

  • Design, build, train, and deploy machine learning models to detect sensitive data and threats.
  • Write production-level code for ML models and participate in code reviews.
  • Architect scalable and maintainable machine learning pipelines integrated with backend systems.
  • Collaborate with cross-functional teams to align ML initiatives with business goals.

Material Security logo
Material Security Scaleup https://material.security.com/
51 - 200 Employees
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Job description

As a Machine Learning Engineer at Material Security, you'll be part of a team of experienced, world-class engineers, working to protect our users and their privacy (e.g., inboxes from breaches, targeted phishing, fraud, and lateral account takeover).  Your mission is to build, deploy, and maintain  high quality models that detect security relevant data and behavior (phishing emails, sensitive data in email and drives).

Responsibilities
  • Design, build, train, and deploy machine learning models to detect sensitive data and malicious threats (phishing emails).

  • Write production-level code to convert your ML models into working pipelines and participate in code reviews to ensure code quality and distribute knowledge.

  • Architect scalable, reliable, and maintainable machine learning pipelines, integrating seamlessly with existing backend systems.

  • Work closely with machine learning engineers, product managers, designers, data scientists, and software engineers to align machine learning initiatives with business goals.

  • Stay ahead of the curve by exploring new algorithms, technologies, and frameworks to enhance our detection models.

  • Contribute to great engineering culture through active participation and mentorship. 

What We’re Looking For

Must Haves

  • B.S., M.S. or Ph.D. in Computer Science or related technical field or relevant work experience.

  • 8+ years (or Ph.D. with 6+ years) of experience in machine learning, data science, or related fields, with at least 3 years in a senior or staff engineering role.

  • Deep understanding of supervised/unsupervised learning techniques and LLMs

  • Strong experience writing efficient and effective data pipelines.

  • Practical knowledge of how to build efficient end-to-end ML workflows and a strong drive to won the entire process of model development from conception through deployment, to maintenance..

  • Experience with machine learning libraries (e.g., scikit, Pandas)

Nice to Have

  • Experience in API development on top of a fast API

  • Experience tracking text embedding modeling

  • Strong knowledge of cloud platforms (e.g., AWS, GCP) and containerization tools (e.g., Docker, Kubernetes).

Material Security is a remote-first workplace with an office in San Francisco, California.


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Compensation at Material Security is determined by a range of factors, including but not limited to the individual’s particular combination of knowledge, skills, competencies, and experience. The projected compensation range for this position is $200,000 - $240,000.

Required profile

Experience

Spoken language(s):
English
Check out the description to know which languages are mandatory.

Other Skills

  • Mentorship
  • Collaboration

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