Machine Learning Engineer

Machine Learning Engineer

1 Nos.
105961
Full Time
3.0 Year(s) To 5.0 Year(s)
10.00 LPA TO 18.00 LPA
IT Software - System Programming
IT-Software/Software Services
Job Description:

About the role

You will join a team of talented and friendly Data Scientists in Machine Learning Operation (MLOPs) and AI (Artificial Intelligence) as a Data Science Squad member.

Team develops state-of-the-art Machine Learning-powered services for automated Supply Chain optimisation, Pricing strategy improvements, and Service Lifecycle Management including Generative AI-powered Knowledge management and warranty claim fraud detection and more.

Team is performing full MLOps cycles from customer pain discovery to production including:

What would you do?

  • Work closely with researchers on all the stages MLOps including DS-Ops (Research and spikes), Data-Ops (Data discovery, Feature selection and engineering) and Model-Ops (build, test and ship production-grade models).
  • Work in cross-functional teams to research, build and deliver the most efficient AI/ML powered solutions for our client problems including Knowledge base, Supply Chain optimization and Fraud Detection.
  • Research design, implement, and deploy machine learning models and algorithms that address specific challenge within after-market, supply chain and price domains.
  • Collaborate with team-members and clients globally to understand project requirements, objectives, and constraints.
  • Process and analyse datasets to extract meaningful insights and features for model development.
  • Design, implement and maintain industry-standard MLOps infrastructure for new and existing ML products
  • Optimize and standardize ML training and validation processes, data warehousing and pipelines.
  • Add automation, drift detection, logging, version control and testing pipelines to the MLOps architecture.

Who you are? 

  • Understanding standard Machine Learning algorithms (like decision trees, neural networks, clustering, and support vector machines).
  • You have good knowledge and experience of Python.
  • You have deep experience with scientific libraries and frameworks such as NumPy, TensorFlow, Kubeflow, Keras, Scikit Learn, OpenCV.
  • Practical industry experience deploying and maintaining ML systems in production.
  • Proficiency in programming languages, frameworks, and tools, such as Python, TensorFlow, PyTorch. Experience with data preprocessing, feature engineering, and model evaluation techniques.
  • Experience working on Gen AI, LLM, knowledge base and supply chain related projects
  • Experience deploying MLOps solutions and working within CI/CD frameworks
  • Experience with Linux systems and cloud infrastructure (AWS, etc.)
  • Experience developing embedded ML applications
  • Technically curious about the emerging AI innovations.
  • Capable of testing using frameworks such as PyTest.

The icing on the cake:

  • Ideally an MSc or PhD in either one of Artificial Intelligence, Computer Science or Applied Mathematics.
  • Experience working on Gen AI, LLM, knowledge base and supply chain related projects
  • Knowledge of Kubernetes and Docker.
  • Familiarity with different image and video data format.
  • Familiar with designing, building and troubleshooting distributed and scalable systems.
  • Experience in building and maintaining cloud-hosted services on AWS.
  • Experience working with MLOps users and data scientists to analyse data,
  • Ability to slice and dice big data with SQL using python.
  • Experience working with Dag execution workflow engines like airflow, Kubeflow, etc.
  • Experience with big data tools: Spark, EMR.
  • Has done feature engineering with Python scientific libraries,
  • Experience in running machine learning models in AWS cloud.
  • Knows about model drift and data drift and how does it affect inferences.
  • Managed to deliver scalable inferences.
  • Understands platform thinking perspective for delivering machine learning use cases for product teams.
Company Profile

--- is an aftermarket service --- company with a global presence. ---'s global headquarters are located in Stockholm, Sweden.

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  • Recruiters will evaluate your candidature and will get in touch with you.

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