AI/ML Engineer Lead and Architect

Remote
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AI Summary

Lead AI/ML projects, manage AI governance, and provide technical leadership to a team of senior AI/ML engineers and data scientists. Requires 10-15 years of experience in AI/ML, with at least 4-5 years in a leadership role. Strong project management skills and expertise in the ML lifecycle are necessary.

Key Highlights
Lead AI/ML projects
Manage AI governance
Provide technical leadership to a team
10-15 years of experience in AI/ML
Strong project management skills
Key Responsibilities
Lead the end-to-end execution of high-priority AI/ML projects
Translate the enterprise AI strategy and product roadmaps into detailed project plans
Manage the day-to-day operations of the AI Review Board (AIRB) submission process
Provide direct line management, technical leadership, and mentorship to a team of senior AI/ML engineers and data scientists
Technical Skills Required
Python TensorFlow PyTorch scikit-learn AWS Azure GCP

Job Description


Job Title: AI/ML Engineer Lead / Architect

Location : 100% Remote Role

Duration : 12+ Months Contract OR Fulltime

Teams Meeting Interview

Job Description:


Lead AI/ML Engineer –

Primary Responsibilities:

AI Project Execution & Delivery:


  • Lead the end-to-end execution of high-priority AI/ML projects, ensuring they are delivered on time, within budget, and to the highest technical standards.
  • Translate the enterprise AI strategy and product roadmaps into detailed project plans, technical specifications, and actionable backlogs for engineering teams.
  • Serve as the primary technical point of contact for project stakeholders, managing dependencies, mitigating risks, and communicating progress effectively.


AI Governance & AIRB Facilitation:


  • Manage the day-to-day operations of the AI Review Board (AIRB) submission process, acting as a hands-on guide for Data Science and product teams.
  • Facilitate the preparation of all required documentation for AIRB reviews, ensuring submissions are complete, clear, and proactively address potential ethical, compliance, and technical concerns.
  • Implement and enforce the governance framework, ensuring teams adhere to established standards and best practices for responsible AI.


Team Leadership & Technical Mentorship:


  • Provide direct line management, technical leadership, and mentorship to a team of senior AI/ML Engineers and Data Scientists.
  • Foster a culture of engineering excellence, collaboration, and continuous improvement within the team and enterprise.
  • Conduct code reviews, design sessions, and technical deep dives to ensure the quality, scalability, and robustness of AI solutions.


Hands-on MLOps & Engineering Practice:


  • Drive the practical implementation of the MLOps strategy, directly overseeing the construction and optimization of CI/CD pipelines for AI/ML systems using tools like GitHub Actions.
  • Enforce rigorous engineering hygiene, including version control for code, data, and models (Git, DVC), and the application of Infrastructure as Code (IaC) principles.
  • Lead the technical implementation of production monitoring solutions to track model performance, identify drift, and ensure the long-term reliability of deployed AI systems.


Required Qualifications:


  • Proven AI/ML Leadership: 10-15 years of experience in the AI/ML field, with at least 4-5 years in a leadership or management role leading technical teams in the delivery of complex AI solutions.
  • Experience with AI Governance: Direct, hands-on experience successfully navigating an internal AI ethics, risk, or governance review process for multiple projects.
  • Strong Project Management Skills: Demonstrated ability to manage complex technical projects from conception to deployment, with expertise in agile methodologies.
  • Expertise in the ML Lifecycle: Deep, practical knowledge of the entire machine learning lifecycle, from data acquisition and feature engineering to model deployment and post-launch monitoring.
  • Hands-on MLOps Experience: Proven experience building and managing CI/CD pipelines and MLOps workflows for machine learning.
  • Strong Technical Foundation: Proficient in Python, common ML frameworks (e.g., TensorFlow, PyTorch, scikit-learn), and cloud platforms (AWS, Azure, or GCP).


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