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Senior Machine Learning Engineer (Contractor)Alpha Business SolutionsUnited States
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Senior Machine Learning Engineer (Contractor)

Alpha Business Solutions
  • US
    United States
  • US
    United States

À propos

Job Title: Machine Learning Engineer Duration: 4 months plus Location: 100% Remote Pay rate: $80/HR - $100/HR W2
Client seeks an experienced Machine Learning Engineer contractor to build algorithmic assets across Personalization, Generative AI, Forecasting, and Decision Science domains. This role combines deep technical modeling expertise with infrastructure engineering to design, build, and operate end-to-end ML/AI systems at scale. You'll implement foundational MLOps frameworks across the full product lifecycle including data ingestion, ML processing, and results delivery/activation. Working cross-functionally with data science, data engineering, and architecture teams, you'll serve as both solutions architect and hands-on implementation engineer.
# The Role: ##
Model Development & Optimization
Design and optimize machine learning models including deep learning architectures, LLMs, and specialized models (BERT-based classifiers. Implement distributed training workflows using PyTorch and other frameworks. Fine-tune large language models and optimize inference performance using compilation tools (Neuron compiler, ONNX, vLLM). Optimize models for hardware targets (GPU, TPU, AWS Inferentia/Trainium).
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Infrastructure Design & AI-Services Architecture
Design AI-services and architectures for real-time streaming and offline batch optimization use-cases Lead ML infrastructure implementation including data ingestion pipelines, feature processing, model training, and serving environments Build scalable inference systems for real-time and batch predictions Deploy models across compute environments (EC2, EKS, SageMaker, specialized inference chips)
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MLOps Platform & Pipeline Automation
Implement and maintain MLOps platform including Feature Store, ML Observability, ML Governance, Training and Deployment pipelines. Create automated workflows for model training, evaluation, and deployment using infrastructure-as-code. Build MLOps tooling that abstracts complex engineering tasks for data science teams. Implement CI/CD pipelines for model artifacts and infrastructure components.
## Performance & Cross-functional Partnership
Monitor and optimize ML systems for performance, accuracy, latency, and cost Conduct performance profiling and implement observability solutions across the ML stack Partner with data engineering to ensure optimal data delivery format/cadence Collaborate with data architecture, governance, and security teams to meet required standards Provide technical guidance on modelling techniques and infrastructure best practices
Please apply with your interest. You may also reach out to me at ...@alphambe.com
Thank you, Ashu
We provide a comprehensive package which includes. Benefits
Medical for full time employees Dental, and Vision Insurance Life Insurance, Short-Term Disability, Long-Term Disability, etc.
  • United States

Compétences linguistiques

  • English
Avis aux utilisateurs

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