Level

IFM

Machine Learning Engineer – World Model

AI in this role

claudecursorclaude-codecodex
ml-opsai-evaluation

About the Institute of Foundation Models 
We are a dedicated research lab for building, understanding, using, and risk-managing foundation models. Our mandate is to advance research, nurture the next generation of AI builders, and drive transformative contributions to a knowledge-driven economy. 

As part of our team, you’ll have the opportunity to work on the core of cutting-edge foundation model training, alongside world-class researchers, data scientists, and engineers, tackling the most fundamental and impactful challenges in AI development. You will participate in the development of groundbreaking AI solutions that have the potential to reshape entire industries. Strategic and innovative problem-solving skills will be instrumental in establishing MBZUAI as a global hub for high-performance computing in deep learning, driving impactful discoveries that inspire the next generation of AI pioneers. 

The Team 

We are the AllWorld Team under the Institute of Foundation Model (IFM) at MBZUAI. At AllWorld, we are pioneering the development of the PAN (Physical, Agentic, and Networked) world models—the next-generation foundation models to unlock machine intelligence beyond lingual.  

  

Our mission is to tackle the fundamental challenges of world modeling and establish a new paradigm for next-generation machine reasoning. We are looking for passionate individuals who share our vision and are eager to push the boundaries of AI together. 

 

Role Overview 

  • We’re looking for a Machine Learning Engineer focused on ML infrastructure and MLOps to design and operate the systems that power our research environment. You’ll build scalable, reliable, and observable cloud infrastructure, working closely with researchers to support data pipelines, experimentation, and evaluation workflows. 

  • This role balances fast-moving research needs with production-grade systems, ensuring that experimental work can scale reliably when needed. 

Key Responsibilities 

  • Design, build, and operate scalable ML infrastructure on AWS (e.g., compute, storage, networking, access control).  

  • Develop and maintain MLOps workflows for data versioning 

  • Build and manage distributed systems for large-scale data processing (filtering, captioning, etc.) and model evaluation.  

  • Own architecture decisions for ML infrastructure and drive best practices in reliability, scalability, and cost efficiency.  

  • Implement observability across systems, including monitoring, logging, and alerting.  

  • Integrate OpenWebUI, Gradio, or similar UIs for data quality assurance 

  • Build and maintain dashboards for experiment tracking and system health.  

  • Partner closely with researchers to translate experimental workflows into robust, scalable systems.  

Qualifications 

Must-Haves 

  • 3+ years of experience in MLOps, ML infrastructure, or related backend/platform engineering roles.  

  • Strong experience with cloud platforms (preferably AWS) and core services for compute, storage, and access control.  

  • Experience designing and operating distributed systems (e.g., Kubernetes, Ray, or similar frameworks).  

  • Solid software engineering skills, including system design, debugging, and testing (Python, Docker, Git).  

  • Familiarity with data processing and pipeline orchestration tools (e.g., Spark, Kafka, or similar).  

  • Experience with observability practices (monitoring, logging, alerting).  

  • Ability to work closely with researchers and translate ambiguous requirements into production-ready systems.  

Nice-to-Haves 

  • Experience in fast-paced or research-driven environments.  

  • Experience with large-scale video or multimodal data pipelines.  

  • Experience building automated model evaluation or benchmarking systems.  

  • Knowledge of cost optimization, security, and networking in multi-tenant environments.  

  • Familiarity with modern developer and AI-assisted coding (e.g., Codex, Cursor, Claude Code) 

How we rate this

Machine Learning Engineer – World Model at IFM rates 98 out of 100 for how much of the daily work is AI. That makes it Builds AI (AI Level 4 of 4). The level is about AI in the job, not seniority.

Classification

Builds AI. The job is building AI systems.

  1. ●●●● Builds AI80 to 100
  2. ●●●○ Works on AI60 to 79
  3. ●●○○ Uses AI40 to 59
  4. ●○○○ Little AI0 to 39

Levels come from how often the tools, models and workflows of the role are named in the posting itself. Open the description and count.

Prepare for this job

A free preview built only from this posting: what it asks for, what you could be asked in an interview, and how to adjust your resume.

Skills and AI tools this role asks for

ML OpsAI EvaluationClaudeCursorClaude CodeCodex

Questions you could be asked

  1. How do you monitor a model once it's live, and how do you know it needs retraining?
  2. How do you decide that one model's output is better than another's for a given task?
  3. What are the limits of Claude that you've run into, and how did you work around them?
  4. What's a project where you used Cursor hands-on?
  5. Walk me through how you've used Claude Code in your day-to-day work.

Adapt your resume

  • List these exact terms on your resume: ML Ops, AI Evaluation, Claude, Cursor, and Claude Code. An applicant tracking system matches the wording, not the idea.
  • Attach one line of real, concrete experience to at least one of them — a tool named with nothing behind it rarely survives a human read.
  • Lead with what you built, trained or shipped — this role is judged on the AI system itself, not the tools around it.

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