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MetAntz
Actively Hiring
Connecting top talents with global opportunities

ML Engineer

Posted: 6 months ago
Job Location
Remote Work Policy

In office - WFH flexibility

Visa Sponsorship

Not Available

RelocationAllowed
Skills
Python
PyTorch

About the job

Job Title: ML Engineer

Job Details

What You Will Own

  • End-To-End Ml Lifecycle Across Real Products. Data Ingestion Feature Design Model Selection Training Deployment Monitoring Iteration. No Handoffs.
  • Production-Grade Ml Systems Built With Pytorch Or Tensorflow With Attention To Latency Reliability Cost And Failure Modes.
  • Applied Genai And Llm Work Where It Creates Measurable Value. Fine-Tuning Rag Prompt Orchestration Evaluation And Guardrails. No Hype-First Work.
  • Mlops Foundations. Model Versioning Ci,Cd Automated Testing Deployment Pipelines Serving Layers Monitoring And A,B Experimentation.
  • Tight Partnership With Product Engineering And Data. Translate Fuzzy Business Problems Into Tractable Ml Solutions And Quantify Impact.
  • Technical Leadership. Code Reviews Model Reviews Mentoring And Raising The Bar For Ml Engineering Discipline.
  • Incident Ownership. Debug Production Failures Data Drift Performance Regressions And Bias Issues Calmly And Decisively.

Required Profile

  • 7+ Years Of Hands-On Ml Engineering With Clear Senior-Level Ownership Of Production Systems.
  • Strong Academic Grounding Or Equivalent Applied Depth In Machine Learning Computer Science Or Related Fields.
  • Expert Python. Deep Familiarity With Pytorch Preferred. Tensorflow Acceptable.
  • Demonstrated Experience Deploying Maintaining And Scaling Ml Models In Production Environments.
  • Solid Cloud Experience Across Aws Gcp Or Azure. Comfort With Spark Sql Docker Kubernetes.
  • Strong Grasp Of Ml Fundamentals. Model Architectures Optimization Tradeoffs Evaluation Design Experimentation Rigor.
  • Clear Written And Verbal Communication. Able To Explain Complex Systems Without Theatrics.

Preferred Signals

  • Direct Experience With Llm Systems In Production. Fine-Tuning Rag Evaluation Safety Cost Control.
  • Exposure To Mlops Platforms Such As Mlflow Kubeflow Airflow Or Equivalent Internal Systems.
  • Depth In One Or More Domains Such As Nlp Search Recommendations Forecasting Anomaly Detection.
  • Evidence Of Technical Leadership. Open-Source Contributions Internal Platforms Publications Or Scaled Internal Tools.

What Nenu Ai Offers

  • Meaningful Ownership Over Core Ai Systems Not Edge Experiments.
  • Compensation Aligned To Senior Impact Not Titles.
  • Performance Bonus In The 10–20% Range Plus Modest Equity Aligned To Company Stage.
  • Full Benefits Including Health Dental Vision 401(K) Unlimited Pto Learning Budget.
  • Hybrid Bay Area Setup Optimized For Collaboration Without Dogma.
  • Work That Compounds. Systems That Ship. Problems That Matter.

About the company

MetAntz company logo

MetAntz

Actively Hiring
Connecting top talents with global opportunities51-200 Employees
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