MLOps Engineer

Reposted 4 Days Ago
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Netanya, ISR
In-Office
Senior level
Artificial Intelligence • Software
The Role
Build and maintain models and data pipelines for training and inference. Ensure data accuracy, consistency, and scalability across structured and unstructured sources. Implement pipeline orchestration, containerized deployments, and distributed computing to support data science workflows and production ML systems.
Summary Generated by Built In
Description

Fetcherr builds responsible AI that transforms market complexity into measurable profit growth. At the core of the company is the Market Model - a proprietary AI-powered model delivering accurate, granular demand predictions with 96% forecast accuracy and real-time decision intelligence for commercial teams. Built on a glass-box architecture, it uses market data - not personal data - with full transparency into logic and outcomes. First deployed in global aviation, the technology is industry-agnostic and scales across volatile markets. Fetcherr delivers a consistent average profit uplift of 7%, with corporate partners including Delta, Virgin Atlantic, WestJet, Viva, and Azul.

We are seeking an MLOps Engineer to help us grow our technical team's capabilities. The ideal candidate has relevant experience in data engineering, preferably within the AI field. Aviation industry experience would be a great addition.

You will be responsible for building and maintaining models and data pipelines that power our data science workflows. You'll play a crucial role in ensuring the accuracy, consistency, and efficiency of the data we use for model training and inference. This involves working with both structured and unstructured data from various sources, leveraging your expertise in data engineering and machine learning to create a robust and scalable system.

Requirements
  • BSc or Master's degree in Computer Science / Math / Engineering
  • At least 5 years of commercial experience in Python
  • At least 3 years hands-on MLOps commercial experience
  • Experience working with pipeline orchestrators (e.g., Dagster, Airflow)
  • Experience with distributed computing systems
  • Experience with Docker and Kubernetes or other scalable containerized solutions
  • Commercial experience in writing and maintaining scalable ML systems
  • Fluent in English, both written and spoken
  • Team player, ready to help others

Nice to have:

  • Good understanding of Data Structures and Algorithms
  • Pro-active with tasks, often suggesting different/better ideas

If you're excited about building impactful AI systems in a high-growth startup environment, and want to help redefine how industries price, forecast, and optimize, we’d love to hear from you.

Skills Required

  • BSc or Master's degree in Computer Science, Math, or Engineering
  • At least 5 years commercial experience in Python
  • At least 3 years hands-on MLOps commercial experience
  • Experience with pipeline orchestrators (e.g., Dagster, Airflow)
  • Experience with distributed computing systems
  • Experience with Docker and Kubernetes or other scalable containerized solutions
  • Commercial experience writing and maintaining scalable ML systems
  • Fluent in English, both written and spoken
  • Team player, ready to help others
  • Good understanding of Data Structures and Algorithms
  • Pro-active with tasks, often suggesting different/better ideas
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The Company
200 Employees
Year Founded: 2019

What We Do

Fetcherr is an algo-based company that revolutionizes the travel industry with its groundbreaking Generative Pricing Engine (GPE), the first of its kind to leverage AI for real-time, market-responsive pricing decisions. Our GPE augments airlines' existing pricing strategies with ultra-granular, high-frequency adjustments, fully automating workflows from pricing determination to fare publishing. Operating non-stop, the GPE identifies untapped revenue opportunities and efficiently distributes updated fares across all channels. Partnerships with Virgin Atlantic, Azul, ATPCO, and INFARE attest to our system's unparalleled capability to enhance revenue while streamlining operations.

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