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Altimetrik
Actively Hiring
IT Services

Senior AI Data Engineer/ Architect

Posted: 1 week ago• Recruiter recently active
Job Location
Remote Work Policy

In office - WFH flexibility

Visa Sponsorship

Not Available

RelocationAllowed
Skills
Python
SQL
scikit-learn
Apache Spark
TensorFlow
PyTorch
databricks

About the job

About the Company

Altimetrik delivers outcomes for our clients by rapidly enabling digital business & culture and infuse speed and agility into enterprise technology and connected solutions. We are practitioners of end-to-end business and technology transformation. We tap into an organization’s technology, people, and assets to fuel fast, meaningful results for global enterprise customers across financial services, payments, retail, automotive, healthcare, manufacturing, and other industries. Founded in 2012 and with offices across the globe, Altimetrik makes industries, leaders and Fortune 500 companies more agile, empowered and successful.

Altimetrik helps get companies get “unstuck”. We’re a technology company that lives organizations a process and context to solve problems in unconventional ways. We’re a catalyst for organization’s talent and technology, helping teams push boundaries and challenge traditional approaches. We make delivery more bold, efficient, collaborative and even more enjoyable.

About the Role

Role- AI Data Engineer / Architect

Location- Princeton, NJ & NYC, NY (Hybrid)

Client- Altimetrik

Role Overview

The AI Data Engineer will specialize in building and optimizing machine learning data pipelines, focusing on AI model tracking, lifecycle management, and integration with AI governance systems. This role combines data engineering expertise with AI/ML knowledge to support the organization's broader data and AI infrastructure initiatives.

Key Responsibilities

  • Design and implement specialized data pipelines for AI model metadata, training data lineage, and model performance metrics tracking.
  • Build data infrastructure on Databricks leveraging Spark for large-scale distributed dataset processing.
  • Develop MCP servers and enable AI data distribution via MCP.
  • Develop feature engineering pipelines and data preprocessing workflows for AI model training and inference.
  • Implement model versioning, experiment tracking, and model registry integration using MLflow or similar tools.
  • Create automated workflows for AI agent discovery, classification, and inventory management across the enterprise.
  • Design and maintain knowledge graph structures for representing AI model relationships, dependencies, and data lineage.
  • Build real-time data pipelines for AI model monitoring, drift detection, and performance tracking.
  • Develop data quality frameworks specific to AI training datasets and validation data.
  • Collaborate with data scientists to optimize data access patterns and feature store implementations.
  • Implement security and compliance controls for sensitive AI training data and model artifacts.
  • Create comprehensive documentation for AI data architectures, schemas, and integration patterns.

Required Skills and Qualifications

  • Bachelor's or Master's degree in Computer Science, Data Science, Machine Learning, or related field.
  • 10-15 years of hands-on experience in data engineering, with at least 2 years focused on AI/ML workloads.
  • Expert proficiency in Python and experience with ML frameworks such as PyTorch, TensorFlow, or scikit-learn.
  • Strong experience with Databricks, Apache Spark, and distributed computing for ML workflows.
  • Deep understanding of the machine learning lifecycle, including model training, deployment, and monitoring processes.
  • Experience with feature engineering, data preprocessing techniques, and ML data pipelines.
  • Knowledge of vector databases, embeddings, and similarity search for AI applications.
  • Proficiency in SQL for structured and unstructured data management.
  • Understanding of data governance, model governance, and AI ethics principles.
  • Strong analytical and problem-solving capabilities with attention to data quality.
  • Excellent collaboration skills for working with data scientists, ML engineers, and architects.

About the company

Funding

AMOUNT RAISED
$1.5B
FUNDED OVER
1 round
Round
S
$1500000000
Seed - Jun 2024

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