Machine Learning Engineer

ThoughtSol Infotech Pvt. Ltd

Noida

On-site

INR 600,000 - 1,000,000

Full time

14 days+

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Job summary

A leading technology company in Noida is seeking a Machine Learning Engineer to design, develop, and optimize machine learning models and algorithms. The ideal candidate will have robust experience in ML operations, cloud engineering, and deploying models in production environments using tools like Azure and Docker. You'll be responsible for the entire machine learning lifecycle from data preprocessing to model deployment, ensuring performance and compliance standards are met. Join a dynamic team that values collaboration and innovation in AI and data-driven solutions.

Qualifications

  • 3+ years of experience in MLOps or cloud engineering is required.
  • Proficiency in Python and related libraries is essential.
  • Experience with Azure ML and CI/CD processes is a must.

Responsibilities

  • Design and optimize ML models using frameworks like TensorFlow and PyTorch.
  • Train, evaluate, and deploy machine learning models to production.
  • Collaborate with teams to integrate ML models into workflows.

Skills

Machine Learning
Data Preprocessing
Feature Engineering
Model Optimization
Docker
Kubernetes
Python
NLP
Computer Vision
Generative AI
CI/CD Integration

Education

Bachelor's or Master's in Computer Science, Engineering or Data Science

Tools

Azure Machine Learning
TensorFlow
PyTorch
scikit-learn
Pandas
NumPy
Azure DevOps
Git
Docker
Jenkins

Job description

1 week ago Be among the first 25 applicants

Model Development & Algorithm Optimization: Design, implement, and optimize ML

models and algorithms using libraries and frameworks such as TensorFlow, PyTorch, and

scikit-learn to solve complex business problems.

Training & Evaluation: Train and evaluate models using historical data, ensuring accuracy,

scalability, and efficiency while fine-tuning hyperparameters.

Data Preprocessing & Cleaning: Clean, preprocess, and transform raw data into a suitable

format for model training and evaluation, applying industry best practices to ensure data

quality.

Feature Engineering: Conduct feature engineering to extract meaningful features from data

that enhance model performance and improve predictive capabilities.

Model Deployment & Pipelines: Build end-to-end pipelines and workflows for deploying

machine learning models into production environments, leveraging Azure Machine

Learning and containerization technologies like Docker and Kubernetes.

Production Deployment: Develop and deploy machine learning models to production

environments, ensuring scalability and reliability using tools such as Azure Kubernetes

Service (AKS).

End-to-End ML Lifecycle Automation: Automate the end-to-end machine learning

lifecycle, including data ingestion, model training, deployment, and monitoring, ensuring

seamless operations and faster model iteration.

Performance Optimization: Monitor and improve inference speed and latency to meet real-

time processing requirements, ensuring efficient and scalable solutions.

NLP, CV, GenAI Programming: Work on machine learning projects involving Natural

Language Processing (NLP), Computer Vision (CV), and Generative AI (GenAI),

applying state-of-the-art techniques and frameworks to improve model performance.

Collaboration & CI/CD Integration: Collaborate with data scientists and engineers to

integrate ML models into production workflows, building and maintaining continuous

integration/continuous deployment (CI/CD) pipelines using tools like Azure DevOps, Git,

and Jenkins.

Monitoring & Optimization: Continuously monitor the performance of deployed models,

adjusting parameters and optimizing algorithms to improve accuracy and efficiency.

Security & Compliance: Ensure all machine learning models and processes adhere to

industry security standards and compliance protocols, such as GDPR and HIPAA.

Documentation & Reporting: Document machine learning processes, models, and results to

ensure reproducibility and effective communication with stakeholders.Required Qualifications:

• Bachelor’s or Master’s degree in Computer Science, Engineering, Data Science, or a related

field.

3+ years of experience in machine learning operations (MLOps), cloud engineering, or

similar roles.

• Proficiency in Python, with hands-on experience using libraries such as TensorFlow,

PyTorch, scikit-learn, Pandas, and NumPy.

• Strong experience with Azure Machine Learning services, including Azure ML Studio,

• Knowledge and experience in building end-to-end ML pipelines, deploying models, and

automating the machine learning lifecycle.

• Expertise in Docker, Kubernetes, and container orchestration for deploying machine

learning models at scale.

• Experience in data engineering practices and familiarity with cloud storage solutions like

• Strong understanding of NLP, CV, or GenAI programming, along with the ability to apply

these techniques to real-world business problems.

• Experience with Git, Azure DevOps, or similar tools to manage version control and CI/CD

• Solid experience in machine learning algorithms, model training, evaluation, and

Seniority level
  • Seniority level
    Entry level
Employment type
  • Employment type
    Full-time
Job function
  • Job function
    Engineering and Information Technology
  • Industries
    IT Services and IT Consulting

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