Machine Learning Engineer

Posted 3 Days Ago
7 Locations
In-Office or Remote
36K-60K Annually
Mid level
Artificial Intelligence • Generative AI
The Role
Designs, builds, and evaluates language models for AI security products. Responsibilities include dataset curation, preprocessing, LLM experimentation, safety and robustness evaluation, dashboards, knowledge graphs, model fine-tuning, production integration, monitoring, CI/CD, and ML tooling. Collaborates with researchers and data scientists to automate quality assurance and guardrails while delivering reliable, scalable, and interpretable models.
Summary Generated by Built In

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.)

Skills Required

  • 2-5+ years of experience working in machine learning or data science
  • Strong software engineering background, including Python
  • Experience with testing frameworks such as pytest or unittest
  • Experience with CI/CD tools
  • Proficiency with machine learning frameworks such as PyTorch
  • Experience with data engineering tools such as Spark, Kafka, or Airflow
  • Familiarity with deploying models on AWS, GCP, or Azure
  • Experience with containerized environments such as Docker and Kubernetes
  • Strong knowledge of supervised and unsupervised learning, deep learning, and NLP
  • Interest or background in cybersecurity, adversarial machine learning, anomaly detection, or related fields
  • Comfort working in fast-moving, ambiguous startup environments
  • 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
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The Company
HQ: San Mateo, CA
34 Employees
Year Founded: 2023

What We Do

WitnessAI is building the guardrails that make AI safe, productive, and usable. Our platform allows enterprises to innovate and enjoy the power of generative AI, without losing control, privacy, or security. WitnessAI is a set of security microservices that can be deployed on premise in your environment, in a cloud sandbox, or your VPC, to ensure that your data and activity telemetry is separated from other customers. Unlike other AI governance solutions, WitnessAI provides regulatory segregation of your information. #AIGovernance #EnterpriseAI #SecureAI #GenerativeAI #AICompliance #DataPrivacy

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