Senior AI Engineer

CellebriteMorristown, NJ

About The Position

We are seeking a talented and driven developer to join our team and help build scalable, cloud-native solutions on AWS. This role sits at the intersection of modern software engineering and applied AI — leveraging AI-powered development tools to enhance engineering productivity while also designing and delivering AI-driven capabilities within our product. You will be developing and maintaining a product to transform complex forensic data from diverse sources into meaningful investigative leads and intelligence insights. This platform will analyze large-scale datasets to uncover patterns, anomalies, and relationships across entities — enabling users to see the bigger picture and act with confidence.

Requirements

  • Strong proficiency in Python and TypeScript, with experience building APIs and cloud‑native architecture.
  • Knowledge of Node.js, Next.js, and React preferred; experience with Go is a plus.
  • Hands‑on experience with AWS services such as SageMaker and Lambda.
  • Ability to produce clear, maintainable code and contribute to shared documentation and engineering standards.
  • Working knowledge of GitHub workflows, secrets handling, and secure release practices.
  • Experience with Amazon EKS and Kubernetes‑based deployment environments.
  • Exposure to GenAI platforms, including LLM integration and semantic caching techniques.
  • Familiarity with observability platforms such as Datadog and structured log aggregation.

Responsibilities

  • Design and implement features for our AWS-based AI solution, including job orchestration, manifest generation, and API integrations.
  • Build and maintain AI-powered product features that extract insights from complex, multi-source forensic datasets.
  • Leverage AI-assisted development tools to accelerate delivery while maintaining high standards of quality, security, and performance.
  • Ensure code quality and reliability through comprehensive unit testing, performance testing, and observability enhancements.
  • Collaborate with cross-functional teams to integrate AI services into broader investigation workflows and runtime environments.
  • Troubleshoot deployment issues and contribute to the continuous improvement of dashboards and monitoring tools.
  • Contribute to data modelling, algorithm exploration, and proof-of-concept development.
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