Jobs · Engineering · Florida

Physical AI Engineering Consultant - Manager - Consulting - Open Location

EY · Tallahassee, FL · 3 wk ago
On-siteEngineering$143k–$262k/yrFull-time

About the role

The opportunity involves contributing to the delivery of innovative AI solutions, working with a diverse team of scientists and engineers to solve complex problems for clients. The role requires a blend of technical expertise and strong interpersonal skills.

Responsibilities

  • Leading workstream delivery and ensuring effective management of processes and projects.
  • Continuously improving processes by identifying innovative solutions through research and analysis.
  • Managing professional employees and supervising teams to deliver complex technical initiatives, with accountability for performance and results.
  • Engaging actively with clients, participating in daily working sessions, and leading workstreams from planning through execution to closure.
  • Identifying opportunities for additional services and managing engagement economics.
  • Researching and implementing scalable AI systems that meet business requirements.
  • Enhancing data pipelines and storage for optimal data accuracy and cleanliness.
  • Monitoring and optimizing learning processes to improve high-performance models.

Qualifications

  • A Bachelor’s degree required (4-year degree) in Business or Economics, Technology Entrepreneurship, Computer Science, Engineering, Informatics, Statistics, Applied Mathematics, Data Science, or Machine Learning.
  • Minimum of 5+ years of full-time working experience in Robotics, Digital Twin, and Computer Vision/Deep Learning/Reinforcement Learning.
  • Proficiency in programming languages such as Python, C++, or Java, with experience in robotics frameworks (e.g., ROS) and simulation environments.
  • Experience designing, building, and maintaining robotics systems and digital twin models.
  • Hands-on experience with NVIDIA Omniverse or similar simulation environments for robotics and digital twin applications.
  • Understanding of robotic systems, kinematics, dynamics, and control algorithms.
  • Understanding of various sensors (e.g., LIDAR, cameras) and actuators used in robotic systems.
  • Familiarity with creating and managing digital twins, including modeling, simulation, and real-time data integration.
  • Knowledge of machine learning techniques and algorithms, particularly in the context of robotics and automation.
  • Proficiency using data manipulation and analysis tools (Pandas, NumPy) to derive insights from sensor data and simulations, and experience with popular ML packages such as TensorFlow, PyTorch, or similar libraries.
  • Extensive experience using DevOps tools like GIT, Azure Devops and Agile tools such as Jira to develop and deploy analytical solutions with multiple features, pipelines, and releases.
  • A solid understanding of Machine Learning (ML) workflows including ingesting, analyzing, transforming data and evaluating results to make meaningful predictions.
  • Experience with MLOps methods and platforms such as MLFlow.
  • Experience with CI/CD practices to automate the testing and deployment of software in Software-in-the-loop (SIL) environments.
  • Experience designing, building, and maintaining ML models, frameworks, and pipelines.
  • Experience designing and deploying end-to-end ML workflows on at least one major cloud computing platform.
  • A strong understanding of data structures, data modeling, and software engineering best practices.
  • Proficiency using data manipulation tools and libraries such as SQL, Pandas, and Spark.
  • Clearly communicating findings, recommendations, and opportunities to improve data systems and solutions.
  • Experience with containerization and scaling models.
  • Integrating models and feedback from downstream consumption systems - reporting and dashboards, AI driven applications.
  • Experience with machine learning algorithms and data architecture design.
  • A solid understanding of and/or interest in Agentic AI/Generative AI.
  • Knowledge of sustainability practices in technology.
  • Strong mathematical and quantitative skills including calculus, linear algebra, and statistics.
  • Willingness to travel to meet client obligations.
  • Deep Learning expertise.
  • Proven ability to lead teams and manage change.

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