We are seeking a talented and experienced Machine Learning Engineer. In this role, you will be at the forefront of applying Generative AI and traditional machine learning to solve complex business challenges. You will bridge the gap between data science and software engineering, taking models from concept to production and ensuring they are robust, scalable, and impactful. You'll work with a modern tech stack centered on Python, Google Cloud Platform, and the latest in LLM technology.
Responsibilities
Generative AI Development:
Design, develop, and fine-tune Generative AI solutions using models like Google's Gemini for tasks such as information extraction, document summarization, and report generation.
Architect and implement advanced Retrieval-Augmented Generation (RAG) systems to enhance model accuracy and provide verifiable, context-aware responses.
Research and apply emerging GenAI techniques, such as agentic frameworks, to build more autonomous and capable systems.
End-to-End Machine Learning:
Design and deploy a wide range of ML models (classification, regression, forecasting, etc.) on Google Cloud Platform.
Build and maintain robust, automated MLOps pipelines for data preprocessing, feature engineering, model training, validation, and deployment using tools like Vertex AI, BigQuery. etc.
Conduct deep data analysis to uncover insights, validate hypotheses, and guide feature engineering for improved model performance.
Collaboration & Strategy:
Partner closely with data scientists, software engineers, and other business stakeholders to frame problem statements, define technical requirements and deliver integrated AI/ML solutions.
Champion best practices in software engineering and MLOps to ensure the quality, maintainability, and scalability of our machine learning systems.
Continuously evaluate and stay current with the latest advancements in the ML and GenAI landscape.
Required Qualifications
Experience: 3+ years of professional experience building and deploying machine learning models in a production environment.
Education: Bachelor's degree in computer science , Data Science, Statistics, or a related quantitative field.
Programming: Advanced proficiency in Python and its core data science/ML libraries (e.g., PyTorch, scikit-learn, Pandas).
Data & SQL: Advanced proficiency in SQL for complex data manipulation, aggregation, and analysis.
Generative AI: Demonstrable, hands-on experience in prompt engineering and/or fine-tuning Large Language Models (e.g., Gemini).
Cloud Platform: Hands-on experience with a major cloud provider, with a strong preference for Google Cloud Platform (GCP).
MLOps: Solid understanding of MLOps principles and experience with related tools (e.g., Vertex AI, CI/CD).
Preferred Qualifications (Nice-to-Haves):
Master's or PhD in a relevant field.
Specific experience with GCP services like Vertex AI, BigQuery, Google Cloud Storage, and GKE.
Experience building RAG systems from the ground up.
Proven ability to lead technical projects and mentor other engineers
Numbers & Facts
Location
San Jose, CA
Industry
Other/Not Classified
Company Size
100 to 499 employees
Skills
Analysis Skillsunmatched
Artificial Intelligence (AI)unmatched
Best Practicesunmatched
Cloud Computingunmatched
Computer Scienceunmatched
Continuous Deployment/Deliveryunmatched
Continuous Integrationunmatched
Data Analysisunmatched
Data Collectionunmatched
Data Scienceunmatched
Emerging Technologyunmatched
Forecastingunmatched
GCP (Good Clinical Practices)unmatched
Leadershipunmatched
Machine Learningunmatched
Mentoringunmatched
Model Validationunmatched
Modeling Languagesunmatched
Performance Managementunmatched
Performance Modelingunmatched
Production Systemsunmatched
Python Programming/Scripting Languageunmatched
Requirements Managementunmatched
SQL (Structured Query Language)unmatched
Science Libraryunmatched
Software Engineeringunmatched
Statisticsunmatched
Technical Deliveryunmatched
Technical Leadershipunmatched
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