ML Engineer: Lifecycle, Deployment & Responsible AI

Smart Communications, Inc.

Philippines

On-site

PHP 1,200,000 - 1,600,000

Full time

5 days ago
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Job summary

Smart Communications, Inc. seeks an experienced Machine Learning Engineer to collaborate with data science and engineering teams to build, deploy, and monitor ML models in on-prem and cloud environments.

You will own the full ML lifecycle—from data prep and feature engineering to deployment, monitoring, and responsible AI practices—ensuring scalable, reliable models and clear communication of insights to stakeholders.

Qualifications

  • Bachelor's degree in a quantitative discipline.
  • 2+ years of experience with the full ML/AI lifecycle from data preparation to deployment and monitoring.
  • Strong proficiency in Python and SQL; experience with AWS/Databricks.
  • Excellent communication skills to explain ML/AI concepts to stakeholders.
  • Exposure to Generative AI or LLMs with understanding of responsible AI practices (bias, data privacy).

Responsibilities

  • Collaborate with data science and engineering teams to develop, optimize, and deploy machine learning models in on premises and cloud environments.
  • Oversee the ML model lifecycle from data preparation and feature engineering to deployment and monitoring.
  • Prepare, clean, and transform data for training and inference.
  • Ensure the scalability, reliability, and performance of machine learning models.
  • Monitor and maintain deployed models, implement updates, and troubleshoot issues.
  • Assist in designing and maintaining ML pipelines, ensuring efficient data flow and model deployment.
  • Translate analytical findings into clear recommendations for stakeholders.
  • Ensure responsible AI practices are followed, addressing bias, fairness, and ethical considerations.

Skills

Python
SQL
AWS/Databricks
Communication
Responsible AI
Generative AI/LLMs

Education

Bachelor's degree in Data Science or related quantitative field

Tools

Git
CI/CD

Job description

Smart Communications, Inc. seeks an experienced Machine Learning Engineer to collaborate with data science and engineering teams to build, deploy, and monitor ML models in on-prem and cloud environments.

You will own the full ML lifecycle—from data prep and feature engineering to deployment, monitoring, and responsible AI practices—ensuring scalable, reliable models and clear communication of insights to stakeholders.

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