Machine Learning Engineer

Cupertino, CA, US • Posted 5 hours ago • Updated 5 hours ago
Full Time
On-site
Fitment

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Job Details

Skills

  • Algorithms
  • FOCUS
  • Scalability
  • Computer Science
  • Statistics
  • Data Mining
  • Research
  • Object-Oriented Programming
  • Python
  • Java
  • C++
  • Big Data
  • Apache Spark
  • SQL
  • Snow Flake Schema
  • TensorFlow
  • PyTorch
  • scikit-learn
  • Machine Learning Operations (ML Ops)
  • Continuous Integration
  • Continuous Delivery
  • Large Language Models (LLMs)
  • Open Source
  • LangChain
  • LlamaIndex
  • Autogen
  • Artificial Intelligence
  • Workflow
  • Management
  • Unsupervised Learning
  • Conflict Resolution
  • Problem Solving
  • Machine Learning (ML)
  • Communication
  • Collaboration
  • Data Science
  • Evaluation
  • Benchmarking

Summary

As a Machine Learning Engineer, you will design and build cutting-edge AI/ML systems that drive meaningful business outcomes at scale. You will work cross-functionally to bring innovative machine learning solutions from research and experimentation through to robust, production-grade deployment.

The MLE will collaborate with other MLEs to build scalable, production-ready ML solutions, taking algorithms from initial concept through to deployment. This hire will design end-to-end AI/ML solutions with clear business impact, from concept to deployment, with a strong focus on feasibility, scalability, and performance. You will benchmark, adapt, and integrate AI/ML models into existing systems.

8 years of related experience building high-throughput, scalable applications or machine learning models in a production environment.\nBachelor's Degree in Computer Science, Statistics, Data Mining, Machine Learning, Operations Research, or related field.\nProficiency in one or more object-oriented programming languages such as Python, Java, or C++, with hands-on experience building distributed systems.\nExperience building large-scale machine learning systems using big data technologies such as Spark, SQL, Snowflake, or similar platforms.\nExperience with ML frameworks such as TensorFlow, PyTorch, or scikit-learn.\nFamiliarity with MLOps practices including model versioning, CI/CD pipelines, and experiment tracking tools such as MLflow or similar.\nExperience building and deploying applications using large language models (e.g., GPT-4, Claude, Gemini, or open-source alternatives) via APIs or self-hosted inference.\nHands-on experience with agentic frameworks such as LangChain, LlamaIndex, or AutoGen to build multi-step, tool-augmented AI workflows.

10 years of related experience building high-throughput, scalable applications or machine learning models in a production environment.\nSolid understanding of ML fundamentals including supervised/unsupervised learning, model evaluation, and feature engineering.\nStrong problem-solving skills with the ability to translate ambiguous business problems into well-defined ML solutions.\nExcellent cross-functional communication skills with the ability to collaborate effectively across engineering and data science teams.\nFamiliarity with LLM evaluation practices including output quality assessment, hallucination detection, and latency benchmarking in production environments.
Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 90733111
  • Position Id: 2b52fe78b5c786c7cd0b9aaf2054da46
  • Posted 5 hours ago
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