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Salary analysis
Compared with the selected benchmark ("Market Average: Senior Level"), this listing's salary midpoint is about 57% higher. The offer sits above the benchmark range (€10,413–€13,916). The offer's range width is broadly in line with the benchmark. This benchmark is based on 1 comparable listings.
| Market | Lower bound (25th percentile) | Median | Upper bound (75th percentile) |
|---|---|---|---|
| Market Average: Machine Learning Engineer | €11,159/per month | €16,639/per month | €21,189/per month |
Role overview: Nebius Token Factory is building an AI training and model post-training capability for frontier model improvement. This role owns the infrastructure that makes large-scale training and RL experiments possible, reliable, reproducible, and efficient. The work sits at the intersection of distributed systems, GPU performance, model training frameworks, RL pipelines, and production engineering. A Senior Machine Learning Engineer owns substantial ML work end to end. They can translate an ambiguous capability goal into concrete experiments, implement and debug training and RL recipes, build the supporting data and systems, and deliver measurable improvements in model quality, experiment throughput, and reliability. They are deeply hands-on and can independently debug both model-behavior failures and distributed training failures. Responsibilities: Design and run model-training and post-training experiments, including SFT, continued pretraining, preference optimization (DPO/IPO/KTO), and RL methods such as RLHF/RLAIF, PPO, and GRPO. Build reward functions, judge models, verifiers, task environments, and evaluation sets for reasoning, coding, tool use, and agentic workflows. Create synthetic data and data pipelines, including teacher-student generation, self-play, rejection sampling, filtering, and quality scoring. Analyze model-behavior failures and turn them into targeted data, reward, or algorithm improvements. Build and maintain distributed training and RL infrastructure using frameworks such as Megatron-LM, DeepSpeed, PyTorch FSDP/DTensor, Ray, verl, slime, AReaL, or OpenRLHF. Implement and debug parallelism strategies (tensor, pipeline, sequence/context, expert, and data parallelism) and build reliable rollout, reward-serving, checkpointing, and experiment-orchestration components. Profile and improve GPU utilization, memory usage, communication efficiency, training throughput, and inference/serving performance. Design rigorous evaluations and ablations for capability, instruction following, reasoning, tool use, safety, and regression risk. Write clear experiment plans, design docs, benchmark reports, and runbooks, and partner across research and platform teams. Must-haves: Strong Python and PyTorch engineering skills, with the ability to move quickly from idea to experiment to working system. Hands-on experience across at least two of: model training, post-training/RL, applied modeling, data pipelines, or large-scale ML systems. Ability to design rigorous experiments with baselines, ablations, metrics, and failure analysis. Practical understanding of modern LLM behavior, instruction tuning, preference optimization, and evaluation challenges. Practical understanding of transformer training bottlenecks, memory pressure, communication overhead, and checkpointing. Ability to reason quantitatively about model quality, throughput, utilization, reliability, cost, and research velocity. Strong communication skills and ability to collaborate with researchers, engineers, and leadership. Nice-to-haves: Experience with LLM post-training, RL, agents, reward modeling, synthetic data, or model evaluation. Experience with RL frameworks or pipelines such as verl, slime, AReaL, OpenRLHF, TRL, or custom PPO/GRPO/RLHF systems. Experience with Megatron-LM, DeepSpeed, PyTorch FSDP/DTensor, Ray, Slurm, or Kubernetes on large GPU clusters. Familiarity with NCCL, CUDA, Triton, Nsight, InfiniBand/RDMA, and H100/H200/B200 clusters, or with model serving and inference optimization. Publications, open-source contributions, or production impact in LLM post-training, RL, reasoning, coding models, synthetic data, distributed training, or evaluation. Experience designing agent environments, tool-use tasks, or verifier-based rewards. Key employee benefits in the US: Health insurance, 401(k) plan, Parental leave, Remote work reimbursement, Disability & life insurance. Pay Transparency: We offer competitive compensation and benefits packages. Base Compensation Range $195,200 - $262,200 USD (annual).
Job Details
Benefits & Perks

| Location | Active listings |
|---|---|
| Remote - Global | 398 |
| Remote - Europe | 126 |
| Amsterdam, Netherlands | 57 |
| London, United Kingdom | 22 |
| Remote - United States | 20 |
| Remote - Finland | 18 |
| Berlin, Germany | 16 |
| Mäntsälä, Finland | 12 |
| Helsinki, Finland | 10 |
| Lappeenranta, Finland | 10 |
| Prague, Czech Republic | 8 |
| Israel | 6 |
| Amsterdam | 5 |
| United Kingdom | 5 |
| Canada | 4 |
| Tel Aviv, Israel | 3 |
| Singapore | 3 |
| Remote | 3 |
| Abu Dhabi | 2 |
| New York City, United States | 2 |
| London | 2 |
| Paris, France | 2 |
| Austin, United States | 2 |
| Dubai | 2 |
| France, Paris | 2 |
| Canada, Remote - United States | 1 |
| East London, United Kingdom | 1 |
| Singapore, Singapore | 1 |
| Minnesota, United States | 1 |
| Remote - Israel | 1 |
| Munich, Germany | 1 |
| UK | 1 |
| Berlin | 1 |
| New Jersey, United States | 1 |
| Remote - Germany | 1 |
| Abu Dhabi, Dubai | 1 |
| Prague | 1 |
| New Jersey, US | 1 |
| Remote - United Kingdom | 1 |
| Oklahoma, United States | 1 |
| Finland | 1 |
| California, United States | 1 |
| Abu Dhabi, United Arab Emirates | 1 |
| Czechia | 1 |
| Alabama, US | 1 |
| Béthune, France | 1 |
| Netherlands | 1 |
| Austin, Texas | 1 |
| San Francisco Bay Area, United States | 1 |
| Kansas City, United States | 1 |
| Béthune, Pas-de-Calais, France | 1 |
| Philadelphia, United States | 1 |
| Dallas, United States | 1 |
| London, UK | 1 |
| Israel, Israel | 1 |
| Remote - EU | 1 |
| Paris | 1 |
| Role type | Active listings |
|---|---|
| Backend Engineer | 308 |
| Software Engineer | 82 |
| Account Executive | 54 |
| Site Reliability Engineer | 6 |
| Technical Product Manager | 5 |
| Technical Project Manager | 5 |
| Technical Program Manager | 5 |
| Product Manager | 4 |
| Sales Representative | 4 |
| System Engineer | 4 |
| Data Center Technician | 3 |
| ML Engineer | 3 |
| Data Center Operations Technician | 3 |
| IT Technician | 2 |
| Product Designer | 2 |
| Hypervisor Engineer | 2 |
| Delivery Manager | 2 |
| Backend engineers, Frontend engineers, Site reliability engineers | 2 |
| Open Positions at Nebius | 2 |
| Applied AI Researcher | 2 |
| Head of Channel Marketing | 1 |
| Forward Deployment Engineer | 1 |
| Site Selection & Colocation Manager | 1 |
| Network Engineer | 1 |
| DC IT Support Manager | 1 |
| Application Security Engineer | 1 |
| MEP Engineer | 1 |
| Datacenter IT Technician | 1 |
| Partner Solutions Architect | 1 |
| Customer Engineer | 1 |
| Internal Control Business Partner | 1 |
| Solutions Partner | 1 |
| Senior System Engineer | 1 |
| Senior Technical Program Manager | 1 |
| Solutions Architecture Leader | 1 |
| Electrical Engineer | 1 |
| Data Scientist | 1 |
| Compensation Analyst | 1 |
| Network Planning Project Manager | 1 |
| Data Center IT Manager | 1 |
| Technical Account Manager | 1 |
| Security Solutions Engineer | 1 |
| Cloud Solution Architect | 1 |
| AI and ISV Partner Business Development Manager | 1 |
| Structured Cabling Design Engineer | 1 |
| ML Infrastructure Engineer | 1 |
| Senior Applied AI Solutions Engineer | 1 |
| VP of Developer Relations & Community | 1 |
| Senior Support Engineer | 1 |
| Operations Specialist | 1 |
| Project Development Manager | 1 |
| Backend Developer | 1 |
| Data Center Operations Manager | 1 |
| Data Center IT Technician | 1 |
| Mechanical Design Engineer | 1 |
| Generalist | 1 |
| HPC Engineer | 1 |
| Solutions Architect | 1 |
| Data Center Electrical Lead | 1 |
| Pricing Director | 1 |
| Manager, ML Solutions Architecture | 1 |
| Senior Technical Project Manager | 1 |
| Accountant | 1 |
| Product Growth Analytics Lead | 1 |
| Group Product Manager | 1 |
| Infrastructure Security Engineer | 1 |
| Senior Research Scientist | 1 |
| GTM Recruiting Manager | 1 |
| Technical Due Diligence Manager | 1 |
| Technical Support Engineer | 1 |
| Data Engineer | 1 |
| Machine Learning Engineer | 1 |
| Mechanical Data Center Technician | 1 |
| Sales Engineer | 1 |
| Senior Software Developer | 1 |
| AI/ML Specialist Solutions Architect | 1 |
| Instructional Designer | 1 |
| Vendor Security & Standards Manager | 1 |
| ML Solutions Architect | 1 |
| Physical Security Systems Technician | 1 |
| Mechanical Engineer | 1 |
| Vulnerability Operations Center Lead | 1 |
| IT Risk and Control Manager | 1 |
| VP of Strategic Sales | 1 |
| Human Resources Specialist | 1 |
| Educational Content Author | 1 |
| Offensive Security Lead | 1 |
| Data Center Logistics Specialist | 1 |
| Financial Controller | 1 |
| Applied ML Engineer | 1 |
| Field Technical Lead | 1 |
| Data Center Facilities Manager | 1 |
| Principal | 1 |
| Systems HPC Engineer | 1 |
| Backend Engineers | 1 |
| Role level | Active listings |
|---|---|
| Mid-Level | 387 |
| Senior | 67 |
| Manager | 14 |
| Executive | 3 |
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