Senior AI/ML Applications Architect

GE Vernova

Markham

On-site

CAD 120,000 - 190,000

Full time

14 days+

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Job summary

GE Vernova seeks an experienced Applications Architect to lead design, development and deployment of ML/AI solutions for grid automation. You will drive edge and cloud deployments, create PoCs, and collaborate across GA product lines and R&D teams to propel innovation.

You will guide architecture standards, containerized microservices, CI/CD pipelines and data/MLOps practices while staying current with industry trends and energy systems technology.

Qualifications

  • Bachelor’s degree in Computer Science, Electrical Engineering, Data Science or related field.
  • Minimum of 7 years hands‑on experience in software engineering, AI/ML development and/or architectural roles.
  • Proven expertise in ML frameworks (TensorFlow, PyTorch, Scikit‑learn) and generative AI tech (LLMs, diffusion models, GANs).
  • Experience with AI/ML workflows, AI/MLOps and CI/CD using cloud-native and on‑prem environments.

Responsibilities

  • Design scalable AI/ML solutions and generative AI applications for grid automation and efficiency.
  • Establish architectural standards and guidelines for AI/ML development across CTO orgs.
  • Build modular, cloud/edge architectures with containerization and infra‑as‑code concepts.
  • Design and deploy on GE GridNode/edge platforms and optimize model performance in production.
  • Collaborate with cross‑functional teams to integrate AI/ML into platforms and new product lines.
  • Stay current with AI/ML and energy tech trends and assess new tools for PoCs.
  • Execute PoCs to validate new AI/ML approaches for energy system apps.

Skills

TensorFlow
PyTorch
Scikit-learn
LLMs
MLOps
CI/CD
Docker
Kubernetes
Python
C#
C++
MATLAB
PSCAD
PSS/E
Digsilent
Azure
AWS
GCP
Edge computing
IoT
GraphDB
SQL
NoSQL
Python scripting

Education

Bachelor’s degree in Computer Science
Bachelor’s degree in Electrical Engineering
Bachelor’s degree in Data Science

Tools

MATLAB
PSCAD
PSS/E
Digsilent
Docker
Kubernetes

Job description

Job Description Summary

GE Vernova is accelerating the path to more reliable, affordable, and sustainable energy, while helping our customers power economies and deliver the electricity that is vital to health, safety, security, and improved quality of life. Are you excited at the opportunity to electrify and decarbonize the world?

We are seeking an experienced and highly skilled Applications Architect to lead the design, development and deployment of advanced machine learning (ML) and generative AI solutions. The role combines deep technical expertise in AI/ML architecture with leadership responsibilities, requiring someone who can drive innovation from concept to production while managing high-performing project teams. This role will also involve developing Proof of Concepts (PoCs) and ensuring the deployment of models on the edge or cloud-based systems.

This position will collaborate closely with Grid Automation (GA) product lines, R&D teams, product management, and other GA functions to drive efficiency and innovation.

Responsibilities
  • Design and architect scalable AI/ML solutions, including generative AI applications, tailored to grid automation and digitalization technologies as well as business efficiency. Ensure optimal performance of these solutions across edge and cloud deployment environments.
  • Establish architectural standards, best practices and technical guidelines for AI/ML development across the CTO organization in collaboration with GEV AI/ML partners.
  • Build a strong technical foundation with architecture built on modular/microservices, cloud/edge, API 1st, privacy by design philosophies; infrastructure concepts of containerization, orchestration, auto-scale capabilities (compute, storage, network) and infra‑as‑code; development concepts of automation (CI/CD, data and MLOps pipelines), code assist and sandboxes for collaboration + experimentation.
  • Design and deploy on GE GridNode/edge platforms, using container and microservices principles and best practices. Develop and implement strategies for optimizing performance of models in production.
  • Collaborate with cross‑functional teams to integrate AI/ML capabilities into existing platforms and develop new intelligent business efficiency and product line solutions.
  • Stay current with state‑of‑the‑art developments in AI/ML, generative AI and energy systems technology through continuous monitoring of research and industry trends.
  • Evaluate and recommend emerging technologies and methodologies (AIML tools, platforms, vendor solutions) for their potential application to grid automation challenges and business opportunities; design, execute and demo proof‑of‑concepts (PoCs) to validate new AI/ML approaches and assess their feasibility for energy system applications.
Required Qualifications
  • Minimum of a Bachelor’s degree in Computer Science, Electrical Engineering, Data Science or related technical field.
  • Minimum of 7 years of hands‑on experience within software engineering, AI/ML development and/or architectural roles.
Desired Characteristics
  • Proven expertise in machine learning frameworks (TensorFlow, PyTorch, Scikit‑learn, etc.) and generative AI technologies (LLMs, SLMs, diffusion models, GANs).
  • Proven experience in applying AI/ML frameworks/workflows, AI/MLOps and CI/CD using cloud‑native and on‑prem development and deployment in operational technology/industrial automation environments.
  • Experience developing and implementing ML models using cloud MLOps pipelines such as AWS Sagemaker, Azure ML, Google VertexAI, Dataiku Cloud or equivalent.
  • Hands‑on professional experience in developing and testing AI/ML algorithms and demonstrated professional experience with grid/physics models in power system simulation tools, MATLAB/PSCAD; as well as power system analysis SW such as PSS/E, Digsilent or equivalent.
  • Experience with DevOps, data pipelines, Azure ML registry, deployment methods (Docker, K8s, etc.).
  • Proven experience designing solutions that include the full AI/ML project lifecycle: data acquisition (real‑time/streaming, batch and response/request), data quality assurance + engineering, model selection and evaluation, tuning, testing, deployment, maintenance and evolution.
  • Strong background in edge computing, IoT deployments and cloud platforms (AWS, Azure, GCP).
  • Expertise of GraphDB, SQL/NoSQL, MS Access databases.
  • Proficiency in programming languages including Python, C# or C++ as well as scientific programming + simulation tools such as MATLAB or R.
  • Experience with time‑series analysis, signal processing, load forecasting and predictive modeling relevant to energy systems and grid operations.
  • Proven track record of successfully delivering complex AI/ML projects from conception to deployment.
  • Track record of applying research insights to solve real‑world business problems and deliver commercial solutions; ability to balance innovation with practical implementation constraints and business requirements.
  • Understanding of industrial IoT, edge computing requirements and real‑time data processing in critical infrastructure environments.
Additional Information

Relocation Assistance Provided: No

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