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ML OPS engineer

ML OPS engineer

talentiser
Fresher
Not Disclosed
Early Applicant
  • Posted 2 months ago
  • Be among the first 10 applicants

Job Description

One of our leading AI platforms, specializing in Computer Vision and Generative AI, is hiring a MLOps Engineer for a fully remote role.



CTC offered: Upto 25 LPA



Key Responsibilities



  • Identify trending open-source AI models with strong community adoption, import them into the Community, and validate them across real-world use cases.

  • Create clear, engaging previews and demos—both technical and non-technical—that showcase model capabilities.

  • Collaborate with Marketing to promote new models and generate compelling content around them.

  • Engage with the open-source AI community to build relationships with original model authors and increase backlink visibility.

  • Develop lightweight Python-based demos and utilities to highlight model performance and usability.





Impact


As an ML Community Ops Engineer, you will directly contribute to growing company's model ecosystem by adding cutting-edge AI models and making them accessible to users. Your work will expand the company's reach, improve discoverability, and ensure our platform remains at the forefront of open-source AI.



Requirements



  • Strong experience developing, fine-tuning, and evaluating machine learning models, including familiarity with model architectures and key evaluation metrics.

  • Expertise in deep learning frameworks (e.g., PyTorch, TensorFlow, JAX) and architectures such as transformers and CNNs.

  • Actively follows AI and ML trends—staying current with emerging models, benchmarks, and communities.

  • Proficiency in Python, with ability to write clean, efficient code for ML workflows and data pipelines.

  • Experience working with cloud platforms (e.g., AWS, GCP, Azure) for model deployment and compute orchestration.

  • Solid software engineering fundamentals, including Git, modular design, and code testing.

  • Practical experience with data preprocessing, feature engineering, and analysis of large datasets.



Great to Have



  • Strong experience developing, fine-tuning, and evaluating machine learning models, including familiarity with model architectures and key evaluation metrics.

  • Expertise in deep learning frameworks (e.g., PyTorch, TensorFlow, JAX) and architectures such as transformers and CNNs.

  • Actively follows AI and ML trends—staying current with emerging models, benchmarks, and communities.

  • Proficiency in Python, with ability to write clean, efficient code for ML workflows and data pipelines.

  • Solid software engineering fundamentals, including Git, modular design, and code testing.

  • Practical experience with data preprocessing, feature engineering, and analysis of large datasets.


More Info

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Key Skills

CNNs

data preprocessing

feature engineering

About Company

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