Nift logo

Machine Learning Operations Engineer

Nift
Remote
RemoteIsrael· about 2 hours ago

Straight from Nift’s careers page. Apply on the company site — no recruiter, no middleman.

ML Ops Engineer

Location: Remote, Israel

Department: Data Science

Nift is disrupting performance marketing, delivering millions of new customers to brands every month. We’re looking for a hands-on ML Ops Engineer to partner with our data scientists to turn their models into production-ready systems.

In this role, you’ll report to the Data Science Manager and work closely with our Data Scientists and Product developers. You’ll architect storage and compute, harden training/inference pipelines, and make our ML code, data workflows, and services reliable, reproducible, observable, and cost-efficient. You’ll also set best practices and help scale our platform as Nift grows. 

Our Mission: 

Nift’s mission is to reshape how people discover and try new brands by introducing them to new products and services through thoughtful thank-you gifts. Our customer-first approach ensures businesses acquire new customers efficiently while making customers feel valued and rewarded. We are a data-driven, cash-flow-positive company that has experienced 731% growth over the last three years. Now, we’re scaling to become one of the largest sources for new customer acquisition worldwide. 

Backed by Spark Capital & Foundry who also invested in Slack, Snap, SeatGeek, Fitbit, Warby Parker, Wayfair and Twitter, we are poised for exponential growth and ready to demonstrate impact on a global scale. Read more about our growth here.

What you will do:

  • ML platform: Productionize training and inference (batch/real-time), establish CI/CD for models, data/versioning practices, and model governance
  • Feature & model lifecycle: Centralize feature generation (e.g., feature store patterns), manage model registry/metadata, and streamline deployment workflows
  • Observability & quality: Implement monitoring for data quality, drift, model performance/latency, and pipeline health with clear alerting and dashboards
  • Engineering excellence: Refactor research code into reusable components, enforce repo structure, testing, logging, and reproducibility
  • Cross-functional collaboration: Work with DS/Analytics/Engineers to turn prototypes into production systems, provide mentorship and technical guidance
  • Roadmap & standards: Drive the technical vision for ML platform capabilities and establish architectural patterns that become team standards

What you need:

  • Experience: 5+ years in ML Ops, including ownership of ML infrastructure for large-scale systems
  • Software engineering strength: Strong coding, debugging, performance analysis, testing, and CI/CD discipline; reproducible builds. Extensive commercial experience with Python developing automated pipelines bringing ML models to production
  • Cloud & containers: Production experience on AWS, DataBricks, Docker + Kubernetes (EKS/ECS or equivalent)
  • IaC: Terraform or CloudFormation for managed, reviewable environments
  • ML tooling: MLflow/SageMaker (or similar) with a track record of production ML pipelines
  • Monitoring/observability: ML monitoring (quality, drift, performance) and pipeline alerting
  • Collaboration: Excellent communication, comfortable working with data scientists, analysts, and engineers in a fast-paced startup
  • PySpark/Glue/Dask/Kafka: Experience with large-scale batch/stream processing
  • Analytics platforms: Experience integrating 3rd party data
  • Model serving patterns: Familiarity with real-time endpoints, batch scoring, and feature stores
  • Governance & security: Exposure to model governance/compliance and secure ML operations
  • Be mission-oriented: Proactive and self-driven with a strong sense of initiative; takes ownership, goes beyond expectations, and does whats needed to get the job done

What you get: 

  • Competitive compensation, flexible remote work
  • Unlimited Responsible PTO
  • Great opportunity to join a growing, cash-flow-positive company while having a direct impact on Nifts revenue, growth, scale, and future success

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