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Senior AI Data Engineer

Enexus GlobalNew York, NY🇺🇸United StatesPosted Sep 18, 2026

Quick Overview

Seniority
Mid Senior
Work mode
Hybrid
Location
New York, NY, United States
Posted
21 hours ago
Neo4jSQLAWSMachine LearningScikit-learnApacheApache SparkAzureDatabricksGenerative AIGoogle CloudPyTorchPythonTensorFlow

Job Description

Required Skills and Qualifications

  • Bachelor's or Master's degree in Computer Science, Data Science, Machine Learning, or related field.
  • 5-7 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.

Preferred/Nice-to-Have Skills

  • Experience with generative AI applications, including RAG (Retrieval-Augmented Generation) and fine-tuning.
  • Knowledge of LangChain, HuggingFace, or other GenAI frameworks.
  • Familiarity with Azure ML, AWS SageMaker, or Google Vertex AI platforms.
  • Experience with graph databases (Neo4j, Amazon Neptune) for knowledge graph implementation.
  • Understanding of AI model explainability and interpretability techniques.
  • Experience with A/B testing frameworks for ML model evaluation.
  • Certification in Databricks, AWS, Azure, or Google Cloud Platform AI/ML services.
  • Publications or contributions to open-source ML projects

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