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Data Science- Graph Neural Networks (Gnn) & Graph Machine Learning

PeopleNTech LLCAlexandria, VA

$70 - $70 / hour

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Overview

Remote
On-site
Compensation
$70-$70/hour

Job Description

  • Title: Data Science- Graph Neural Networks (GNN) & Graph Machine Learning
  • Location: US
  • Working Model: Remote
  • Pay Rate: $70.00 per hour on W2

Job Description

We are seeking a highly skilled Data Scientist with proven expertise in Graph Neural Networks (GNNs)and Graph Machine Learning to lead the design, development, and implementation of graph-based AI models as part of a strategic Proof of Concept (POC).

The GNN architecture is the core of this engagement and, therefore, candidates must demonstrate prior hands-on experience building, training, evaluating, and deploying graph-based machine learning solutions. General Data Science, Machine Learning, or Deep Learning experience alone will not be considered sufficient.

Key Responsibilities

  • Design, build, and optimize Graph Neural Network (GNN) models for complex business problems.
  • Develop graph-based solutions for:
    • Link Prediction
    • Node Classification
    • Recommendation Systems
    • Network Analysis
    • Knowledge Graph Analytics
    • Fraud Detection
    • Entity Resolution
  • Build scalable graph data pipelines and feature engineering workflows.
  • Work with large-scale graph datasets and graph databases.
  • Conduct model evaluation, experimentation, and performance optimization.
  • Collaborate with domain experts, architects, and engineering teams to deliver production-ready solutions.
  • Present technical findings and solution recommendations to stakeholders.

Must-Have Skills (Mandatory)

1. Graph Neural Networks (Non-Negotiable)

  • Proven hands-on experience implementing:
    • Graph Convolution Networks (GCN)
    • Graph Attention Networks (GAT)
    • GraphSAGE
    • Heterogeneous Graph Networks
    • Temporal GNNs
  • Experience solving real-world Graph ML problems.

2. Demonstrated Graph ML Delivery Experience

Candidate must provide examples of prior graph-based machine learning implementations, including:

  • Problem statement
  • Graph modeling approach
  • Architecture used
  • Business outcome achieved

Note: Prior experience in power systems is not mandatory. However, prior Graph ML/GNN implementation experience is mandatory.

3. Python & Advanced Machine Learning

Strong experience with:

  • Python
  • NumPy
  • Pandas
  • Scikit-learn
  • Data processing and feature engineering

4. GNN Frameworks

Hands-on expertise with:

  • PyTorch Geometric (PyG)
  • Deep Graph Library (DGL)
  • TensorFlow GNN

5. Deep Learning

Experience with:

  • PyTorch
  • TensorFlow
  • Neural network design
  • Hyperparameter tuning
  • Model optimization

6. Graph Data Modeling

Experience working with:

  • Node and edge feature engineering
  • Graph embeddings
  • Knowledge graphs
  • Graph representation learning

7. Communication & Stakeholder Management

  • Ability to explain complex graph-based concepts to business stakeholders.
  • Experience working in cross-functional delivery teams.

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FAQs About Data Science- Graph Neural Networks (Gnn) & Graph Machine Learning Jobs at PeopleNTech LLC

What is the work location for this position at PeopleNTech LLC?
This job at PeopleNTech LLC is located in Alexandria, VA, according to the details provided by the employer. Some roles may also include multiple work locations depending on the requirement.
What pay range can candidates expect for this role at PeopleNTech LLC?
Candidates can expect a pay range of $70–$70 per hour for this role.
What employment applies to this position at PeopleNTech LLC?
The employer has not provided this information. This may be discussed during the hiring process.
What is the process to apply for this position at PeopleNTech LLC?
You can apply for this role at PeopleNTech LLC either through Sonara's automated application system, which helps you submit applications 10X faster with minimal effort, or by applying manually using the direct link on the job page.