Principal ML Engineer

Client of Involved Solutions

Posted 30+ days ago

Experience

5 - 10 Years

Education

Any Graduation

Nationality

Any Nationality

Gender

Not Mentioned

Vacancy

1 Vacancy

Job Description

Roles & Responsibilities

We have partnered with a product-led organisation building large-scale, production-grade machine learning systems.

This is a Principal ML Engineer role for someone who wants to set technical direction, solve hard problems and influence how ML is built and deployed across the business.

You will be hands-on where it matters, while also shaping architecture, standards and best practices for ML at scale.

About the role:

  • Define and evolve the organisation's machine learning architecture and technical standards
  • Lead the design and deployment of scalable ML pipelines and inference systems
  • Own the reliability, performance, and observability of models running in production
  • Partner closely with data science, engineering, and product leaders on high-impact ML initiatives
  • Guide and mentor senior engineers and data scientists on ML engineering best practices
  • Drive adoption of modern ML and applied AI techniques where they create real value

About you:

  • Deep experience building production ML systems using Python and modern ML frameworks such as PyTorch or TensorFlow
  • Strong background in classical ML (scikit-learn, gradient boosting) and feature engineering at scale
  • Proven experience working with large datasets using Pandas or Polars and distributed processing frameworks like Spark or PySpark
  • Hands-on experience deploying models using Docker, APIs (for example FastAPI) and cloud-native infrastructure
  • Strong MLOps experience including experiment tracking, model versioning, monitoring and drift detection using tools such as MLflow or Weights & Biases
  • Experience orchestrating ML workflows with Airflow, Prefect or Dagster
  • Solid cloud experience across AWS, GCP, or Azure, including scalable compute and managed ML services
  • Practical exposure to modern applied AI, including embeddings, vector search and retrieval-augmented generation
  • Comfortable setting technical direction, making trade-offs and owning ML outcomes in production

Desired Candidate Profile

About you:

  • Deep experience building production ML systems using Python and modern ML frameworks such as PyTorch or TensorFlow
  • Strong background in classical ML (scikit-learn, gradient boosting) and feature engineering at scale
  • Proven experience working with large datasets using Pandas or Polars and distributed processing frameworks like Spark or PySpark
  • Hands-on experience deploying models using Docker, APIs (for example FastAPI) and cloud-native infrastructure
  • Strong MLOps experience including experiment tracking, model versioning, monitoring and drift detection using tools such as MLflow or Weights & Biases
  • Experience orchestrating ML workflows with Airflow, Prefect or Dagster
  • Solid cloud experience across AWS, GCP, or Azure, including scalable compute and managed ML services
  • Practical exposure to modern applied AI, including embeddings, vector search and retrieval-augmented generation
  • Comfortable setting technical direction, making trade-offs and owning ML outcomes in production

Company Industry

Department / Functional Area

Keywords

  • Principal ML Engineer

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