Remote Kubernetes Jobs in Web3

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Job Position Company Posted Location Salary Tags

Trustana

New York, NY, United States

$67k - $75k

Swissblock

Zug, Switzerland

$90k - $106k

StackedSP Inc

Remote

$120k - $170k

Consensys

Remote

$118k - $209k

Consensys

Remote

$90k - $105k

Keyfactor

Remote

$98k - $156k

Matter Labs

Remote

$67k - $150k

0x

San Francisco, CA, United States

$36k - $54k

0x

San Francisco, CA, United States

$95k - $230k

Ripple

London, United Kingdom

$157k - $175k

FalconX

Remote

$106k - $165k

0x

San Francisco, CA, United States

$95k - $230k

bemo

Remote

$84k - $120k

Kiln

Paris, France

$87k - $100k

TechOps Services

Remote

$122k - $140k

Machine Learning Engineer

Trustana
$67k - $75k estimated

This job is closed

Machine Learning Engineer

Job Description:

You will drive innovation through data engineering, machine learning and efficient deployment strategies. The ideal candidate will posses a robust comprehension of ML principles and their scientific underpinnings, while seamlessly applying this knowledge within an engineering and product focused environment.

Responsibilities:

Data Engineering: Design and develop robust data pipelines for acquiring, preprocessing, and transforming diverse datasets to support machine learning models. Implement scalable solutions for data ingestion, storage, and retrieval.

Machine Learning Development: Utilize state-of-the-art machine learning techniques to build predictive, generative models and recommendation systems. Focus on Natural Language Processing (NLP), including large language models (LLM). It's nice to have multi-modal capabilities and proficiency in Computer Vision techniques.

Model Deployment & Evaluation: Implement efficient and scalable deployment pipelines for machine learning models, ensuring seamless integration into production environments. Collaborate with DevOps and software engineering teams to automate deployment processes and monitor and evaluate model performance in real time.

Continuous Improvement: Stay updated with the latest advancements in the ML space. Proactively identify opportunities to enhance existing models and pipelines, driving innovation and efficiency.

Requirements:

  • Bachelor's degree or higher in Computer Science, Engineering, Mathematics, or related field.
  • Strong understanding of software engineering best practices, version control systems, CI/CD, and agile development methodologies.
    Proven experience in data engineering, including data acquisition, preprocessing, and ETL.
  • Proficiency in programming languages such as Python, with experience in ML frameworks like PyTorch, TensorFlow and libraries like HuggingFace, Pandas, Bokeh.
  • Experience designing, training, and deploying machine learning models in production environments encompassing containerization technologies like Docker, cloud platforms, and model-serving frameworks like TorchServe and MLFlow. Scaling strategy experience in a high-throughput, low-latency scenario is desirable. Additionally, familiarity with advanced DevOps capabilities, such as Kubernetes, is nice to have.
  • Good communication skills and ability to collaborate effectively in a team environment.
  • Previous exposure to web or e-commerce applications and an understanding relevant industry challenges and requirements is desirable.

Note: This job description is not exhaustive. We encourage candidates to apply even if not all conditions are met, as we will provide professional growth opportunities.