- Location
- Mountain View, California, United States
- Employment
- Full time
- Level
- Mid level
- Posted
- 12 months ago
About this role
Job Title: Machine Learning Engineer
Location: Cairo
Type: Full-time
Team: Machine Learning
About Us
Witness AI invented intent-based AI security. While legacy tools monitor what users say to AI, we understand what they're trying to accomplish - stopping jailbreaks, data exfiltration, and shadow AI before damage occurs. We provide visibility into how employees and systems use AI - capturing prompts, responses, and agent activity - so security teams can monitor risk, investigate incidents, and enforce guardrails in real time.
The Role
As a Machine Learning Engineer, you’ll design, build, and evaluate language models that power our AI security products. You’ll own the end-to-end pipeline - from dataset curation and preprocessing to experiment design, evaluation, and visualization of results. This role blends engineering and applied research, with an emphasis on producing reliable, interpretable, and safe language models.
What You’ll Do
Build scalable pipelines to collect, preprocess, and manage datasets for training and evaluation of LLMs.
Design and run experiments to evaluate LLMs on accuracy, robustness, fairness, and safety.
Create dashboards, reports, and visualizations to communicate evaluation results, trends, and failure cases.
Develop and leverage knowledge graphs to structure data, enrich evaluation, and improve context-driven model performance.
Work with researchers to translate new ideas into engineering workflows, and with data scientists to automate QA checks and guardrails.
Fine-tune, optimize, and integrate models into production systems with a focus on reliability, scalability, and monitoring and CI/CD best practices.
Contribute to ML tooling and experimentation frameworks to accelerate iteration.
What We’re Looking For
Experience: 2 - 5+ years working in machine learning or data science, ideally in a security or infrastructure-heavy environment.
Technical Skills:
Strong software engineering background (Python, testing frameworks like pytest/unittest, CI/CD tools).
Proficiency in ML frameworks such as PyTorch.
Experience with data engineering tools (e.g., Spark, Kafka, Airflow).
Familiarity with deploying models on cloud platforms (AWS, GCP, or Azure) and containerized environments (Docker, Kubernetes).
Strong knowledge of ML fundamentals (supervised/unsupervised learning, deep learning, NLP).
Security Awareness: Interest or background in cybersecurity, adversarial ML, anomaly detection, or related fields.
Startup Mindset: Comfortable working in fast-moving, ambiguous environments with a focus on shipping and iterating quickly.
Nice to Have
Research or industry experience in adversarial ML, model robustness, or explainable AI.
Experience building interactive dashboards for model monitoring and visualization.
Contributions to open-source ML, NLP, or security projects.
Salary Range
$36,000-$60,000 (The exact salary will be determined based on the selected candidate’s location, qualifications, experience, and relevant skills.)
As published by Witness AI. Applications are handled on their site.
Skills this posting mentions
About Witness AI
Witness AI is a groundbreaking technology startup that is poised to revolutionize the expert witness search industry. Our innovative approach utilizes advanced AI and machine learning techniques to automate and streamline the process of identifying qualified experts for legal cases.
All 7 openings at Witness AIOne click, then it is written
Apply to Witness AI with a resume written for this role.
Queue Machine Learning Engineer and I read the posting, rewrite your resume against it, draft the cover letter, and score the fit. Then you press send, or press one button and I fill in Witness AI’s form for you.
01Drop your resume
A PDF or a LinkedIn URL. About a minute, once.
02I rank the openings
Every weekday morning, the live catalog scored against your history. Up to 20 worth your time, not two hundred links.
03Each one is written up
Resume rewritten for the posting, a cover letter, a fit score. Press send, or let me fill in the form.
- 25 sent a week, free
- No card
- Nothing sent until you say so
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Put this to work
Paste your career in once. Every application after that is written for you.
Drop a resume or a LinkedIn URL. I rank the live openings against it, rewrite the resume and write a cover letter for the best of them, and fill in the employer's form when you press the button. You read, you decide what goes out.
01Drop your resume
A PDF or a LinkedIn URL. About a minute, once.
02I rank the openings
Every weekday morning, the live catalog scored against your history. Up to 20 worth your time, not two hundred links.
03Each one is written up
Resume rewritten for the posting, a cover letter, a fit score. Press send, or let me fill in the form.
- New matches ranked and written before you are up.
- Every bullet stays inside what your history supports. Nothing invented.
- Queued, submitted, interviewing, offer: one screen, not a spreadsheet.
500 free credits on sign-up. No card. Nothing is sent until you say so.
Listed from the job board Witness AI publishes. Refolk is not the employer and does not handle their hiring. Applications go to Witness AI directly.