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AI/ML Engineer | Talent Marketplace

Posted 1h ago

About the role

The AI/ML Engineer is responsible for designing, building, and deploying machine learning models and AI-powered systems that solve real business problems. This role spans the full ML lifecycle - from data preparation and model development to production deployment and monitoring - and requires a strong combination of software engineering discipline and data science expertise. The AI/ML Engineer collaborates closely with data engineers, product managers, and business stakeholders to deliver AI solutions that are accurate, reliable, and scalable.

What you'll do

  • Design, develop, and deploy machine learning models for classification, regression, NLP, computer vision, recommendation, or other applicable use cases.
  • Work with data engineers to build and maintain data pipelines that feed ML model training and inference.
  • Evaluate and select appropriate algorithms, frameworks, and architectures for each problem.
  • Train, validate, and fine-tune models using best practices for avoiding overfitting and ensuring generalization.
  • Deploy models to production environments and build robust inference pipelines.
  • Monitor model performance post-deployment and implement strategies for model retraining and drift detection.
  • Collaborate with product and engineering teams to integrate AI features into applications.
  • Conduct experiments, document findings, and present insights to technical and non-technical stakeholders.
  • Stay current with advances in AI/ML research and assess applicability to the business.
  • Contribute to MLOps practices, tooling, and infrastructure.

Requirements

  • 3–5 years of experience in machine learning engineering, data science, or a related field.
  • Proficiency in Python and core ML libraries (scikit-learn, TensorFlow, PyTorch, or similar).
  • Strong understanding of machine learning fundamentals (supervised/unsupervised learning, model evaluation, feature engineering).
  • Experience deploying ML models to production environments (APIs, batch pipelines, or embedded systems).
  • Familiarity with data manipulation and analysis (Pandas, NumPy, SQL).
  • Solid software engineering practices - version control, testing, and code quality.
  • Strong analytical and problem-solving skills.

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