Machine Learning Engineer (Governance ML Platform)

Lever, Inc.

France

À distance

EUR 90 000 - 140 000

Plein temps

Il y a 2 jours
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Avantages offerts par ce poste

Remote work (EMEA)
Ownership of production ML infra
Health and wellness resources
Wellness Fridays
Region-specific benefits
Remote-first collaboration

Résumé du poste

Lever, Inc. is seeking a Machine Learning Engineer (Governance ML Platform) for a fully remote role across the EMEA region. The job focuses on building production-grade ML infrastructure for AI governance and trust, including model serving, evaluation, red-teaming, and monitoring.

You will turn ML research into reliable production systems with low latency, and create feedback loops using telemetry and audit data to improve governance models. Strong emphasis on security and auditable ML ops.

Qualifications

  • 4–7 years of ML software engineering with production ML systems.
  • Experience with ML model serving, low-latency inference, quantization and distillation.
  • Experience designing evaluation pipelines and working with model registries.
  • Experience with red-team or adversarial testing frameworks, CI-gated workflows.
  • Practical experience with model drift monitoring and shadow deployment strategies.
  • Strong SQL skills and PostgreSQL knowledge.

Responsabilités

  • Own the ML infrastructure supporting governance models, including serving and monitoring.
  • Build low-latency model-serving systems for production workloads.
  • Develop and manage model registries and lifecycle infrastructure.
  • Translate research into production with optimizations like quantization/distillation.
  • Build drift-monitoring and shadow-deployment capabilities.
  • Develop telemetry-to-training pipelines from production signals and audit data.
  • Design red-team testing infra, scorecards, regression suites and CI gates.
  • Establish continuous self-improvement workflows for datasets and retraining.
  • Implement safeguarding controls for auditable ML operations.
  • Collaborate across teams to advance AI agent infrastructure and governance.
  • Contribute to a culture of documentation, testing and monitoring.

Connaissances

LLM/agent systems
Low-latency inference
Model evaluation pipelines
PostgreSQL
Security-first mindset
CI/CD workflows
SQL skills
Distributed collaboration

Outils

PostgreSQL extensions (C/Rust)

Description du poste

This position is listed on behalf of a partner company, who manages all applications and next steps. Our partner is looking for a Machine Learning Engineer (Governance ML Platform) based in France.

This is a fully remote EMEA opportunity focused on building production-grade machine learning infrastructure for AI governance and trust.
You will help develop the ML foundation supporting next-generation AI agent capabilities built around PostgreSQL.
The role spans model serving, evaluation, red-teaming, monitoring, retraining, and continuous model improvement.
You will turn ML research and experimentation into reliable, low-latency production systems with strong operational controls.
A key part of the role is creating feedback loops that use telemetry and audit data to improve governance models over time.
You will work on security-sensitive systems where reliability, traceability, and responsible deployment are essential.
This position is ideal for an experienced ML engineer who enjoys combining applied machine learning, infrastructure, security, and emerging agent technologies.

Accountabilities
  • Own the machine learning infrastructure supporting governance models, including model serving, evaluation, monitoring, red-teaming, and continuous improvement.
  • Build and maintain low-latency model-serving systems and evaluation pipelines designed for production workloads.
  • Develop and manage model registries and supporting infrastructure for reliable model lifecycle management.
  • Translate research and experimental models into production systems, including optimization techniques such as quantization and distillation to achieve low-latency inference.
  • Build drift-monitoring and shadow-deployment capabilities to identify changes in model behavior and validate new versions safely.
  • Develop telemetry-to-training pipelines that turn production signals and audit data into actionable inputs for model improvement.
  • Design and maintain red-team testing infrastructure, including attack orchestration, scorecards, regression suites, and CI-based quality gates.
  • Establish continuous self-improvement workflows covering dataset curation, retraining, validation, and controlled model rollout.
  • Implement appropriate safeguards and deployment controls to support secure and auditable machine learning operations.
  • Collaborate across engineering and AI-focused teams to advance infrastructure for AI agents, governance, trust, and retrieval capabilities.
  • Contribute to a high-quality engineering culture through documentation, testing, monitoring, and continuous improvement.
Requirements
  • 4–7 years of professional experience in machine learning software engineering, with hands-on experience building LLM-based or agentic systems.
  • Strong production experience with ML model serving, particularly low-latency inference, quantization, and model distillation.
  • Proven experience building evaluation pipelines and working with model registries.
  • Experience designing red-team or adversarial testing frameworks, including regression testing and CI-gated workflows.
  • Practical experience with model drift monitoring and shadow deployment strategies.
  • Strong SQL skills and solid working knowledge of PostgreSQL.
  • Security-first mindset and experience developing or operating systems in audited, compliance-sensitive, or security-conscious environments.
  • Strong software engineering and problem-solving skills, with the ability to take ML systems from experimentation through reliable production deployment.
  • Ability to design scalable infrastructure and establish robust processes for model evaluation, monitoring, and continuous improvement.
  • Strong communication and collaboration skills within distributed, cross-functional engineering environments.
  • Experience building automated retraining loops using production telemetry or audit data is a plus.
  • Familiarity with Model Context Protocol (MCP), tool registries, and AI agent orchestration patterns is an advantage.
  • Experience developing PostgreSQL extensions in C or Rust, or contributing to the PostgreSQL ecosystem, is a plus.
Benefits
  • 100% remote work within the EMEA region.
  • Opportunity to work on emerging AI agent infrastructure and machine learning governance technologies.
  • Hands-on ownership of production ML infrastructure spanning serving, evaluation, security testing, and continuous improvement.
  • Opportunity to work at the intersection of machine learning, AI agents, PostgreSQL, security, and enterprise technology.
  • Access to health and wellness resources, including CuraLinc.
  • Wellness Fridays available through December 2026.
  • Additional region-specific benefits and perks depending on location.
  • Remote-first environment supporting collaboration across an international engineering organization.
  • Opportunity to contribute to the development of secure, reliable, and enterprise-ready AI technologies.
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