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VARITE INC

Data engineer II/MLOps Enginneer

Gurugram, India
₹1.5L/mo
2+ years exp
Contract
Posted 5d ago
2 views
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Job Description

Job Title: Data Engineer II

Location: Gurgaon, HR

Experience Required: 3+ years

Role Type: Contract-5 months

Shift: general

Work Mode: Hybrid

CTC-18 LPA

Mandate skills:

  • Python
  • PySpark / Spark
  • AWS – S3, SageMaker, Lambda, EKS, EMR, Glue, Athena
  • MLOps / ML Model Deployment & Inference
  • Docker & Kubernetes
  • Terraform / IaC
  • CI/CD

About The Job:

Company Name: VARITE India Private Limited

About The Client:

An American technological research and consulting firm based in Stamford, Connecticut that conducts research on technology and shares this research through private consulting, executive programs, and conferences. Its clients include large corporations, government agencies, technology companies, and investment firms.

The Client serves over 12,000 organizations in over 100 countries with an employee strength of 15,000

  • About The Job:
  • Client is seeking a talented and passionate MLOps Engineer to join our growing team.
  • Responsible for building Python- and Spark-based ML solutions that ensure the reliability, scalability, and efficiency of machine learning workloads in production.
  • Collaborate closely with data scientists, data engineers, and software engineers to operationalize ML models and optimize MLOps workflows.
  • Leverage expertise in Python, Spark, ML model inferencing, AWS, and cloud-native technologies to drive data-driven initiatives
  • Essential Job Functions: MLOps Infrastructure & Automation:
  • Design, implement, and maintain scalable and reliable MLOps pipelines on AWS.
  • Automate ML model inferencing, deployment, monitoring, retraining, and maintenance workflows.
  • Build and maintain Infrastructure as Code (IaC) using Terraform or equivalent tools.
  • Implement and manage CI/CD pipelines for API, ML model, and infrastructure deployments.
  • Establish automated testing, validation, versioning, and release processes for ML pipelines.
  • Implement model and pipeline monitoring, logging, alerting, and operational dashboards.
  • Develop reusable automation frameworks and deployment patterns for machine learning workloads
  • Deployment & Scaling:
  • Deploy pre-trained machine learning models on AWS using services such as SageMaker, EKS, and AWS Batch.
  • Optimize model inference workloads for performance, scalability, availability, and cost efficiency.
  • Implement batch and real-time model inference solutions based on business requirements.
  • Manage containerized ML workloads using Docker and Kubernetes.
  • Support model versioning, rollback, blue/green deployments, and controlled production releases.
  • Troubleshoot model serving, deployment, networking, and infrastructure-related issues
  • Data Engineering & Management:
  • Design and implement data pipelines for ML inference using AWS services such as S3, EMR, Glue, and Athena.
  • Develop scalable data processing workflows using Apache Spark and Python.
  • Ensure data quality, consistency, validation, and availability for ML pipelines.
  • Optimize data storage, processing, and retrieval to improve ML inference performance.
  • Work with structured and unstructured datasets and support large-scale data processing.
  • Implement data lineage, pipeline monitoring, and error-handling mechanisms
  • Collaboration & Communication:
  • Collaborate with data scientists and fellow engineers to ensure smooth model deployment and production operations.
  • Partner with data engineering, DevOps, and cloud teams to establish scalable ML infrastructure.
  • Communicate technical concepts, implementation approaches, and findings effectively to technical and non-technical stakeholders.
  • Participate in code reviews and contribute to engineering standards and MLOps best practices.
  • Troubleshoot and resolve production issues related to ML pipelines, model inference, applications, and infrastructure.
  • Document architecture, deployment procedures, operational processes, and troubleshooting guidelines.
  • Continuously evaluate new MLOps technologies and recommend improvements to existing platforms and workflows
  • Qualifications: Data Engineer:
  • Strong proficiency in Python and Spark.
  • Experience with AWS cloud services particularly Sagemaker, Lambda, EKS, S3, Glue, EMR and Terraform or other equivalent cloud (IAC).
  • Experience with containerization technologies (e.g., Docker, Kubernetes).
  • Bachelor's or Master's degree in Computer Science, Engineering, Data Science, or a related field with 3–5 years of experience working with data and ML services using Python and Spark.
  • Strong proficiency in Python and Apache Spark.
  • Hands-on experience with AWS cloud services, particularly SageMaker, Lambda, EKS, S3, Glue, EMR, and Athena.
  • Strong experience with Terraform or equivalent Infrastructure as Code (IaC) technologies.
  • Experience with Docker and Kubernetes and containerized application deployment.
  • Experience developing and managing CI/CD pipelines for ML applications and infrastructure.
  • Strong understanding of ML model deployment, model serving, and inference workflows.
  • Exposure to MLOps platforms, tools, and best practices.
  • Exposure to Big Data technologies and data engineering concepts.
  • Understanding of cloud security, IAM, networking, monitoring, and AWS best practices.
  • Experience with REST APIs, serverless architectures, and event-driven workflows is an added advantage.
  • Strong problem-solving, troubleshooting, and analytical skills.
  • Ability to work effectively in a collaborative, cross-functional team environment.
  • Strong understanding of software development lifecycle, version control, testing, and deployment practices.
  • Ability to design reliable, scalable, and production-ready ML solutions
  • How to Apply: Interested candidates are encouraged to respond/submit their updated resumes, and for additional job opportunities, please visit Jobs In India – VARITE
  • Unlock Rewards: Refer Candidates and Earn.

If you're not available or interested in this opportunity, please pass this along to anyone in your network who might be a good fit and interested in our open positions. VARITE offers a Candidate Referral program, where you'll receive a-time referral bonus based on the following scale if the preferred candidate completes a three-month assignment with VARITE

  • Experience Level Bonus Referral: 0-2 years INR 5,000

2-6 years INR 7,500

6+ years INR 10,000

About VARITE: VARITE is a global staffing and IT consulting company providing technical consulting and team augmentation services to Fortune 500 Companies in USA, UK, CANADA and INDIA. VARITE is currently a primary and direct vendor to the leading corporations in the verticals of Networking, Cloud Infrastructure, Hardware and Software, Digital Marketing and Media Solutions, Clinical Diagnostics, Utilities, Gaming and Entertainment, and Financial Services

  • Equal Opportunity Employer: VARITE is an equal opportunity employer. We celebrate diversity and are committed to creating an inclusive environment for all employees. We do not discriminate based on race, color, religion, sex, sexual orientation, gender identity or expression, national origin, age, marital status, veteran status, or disability status

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Key Requirements & Skills

  • 3+ years of experience (Bachelor's or Master's in Computer Science, Engineering, Data Science, or related field with 3-5 years working with data and ML services)
  • Strong proficiency in Python and Apache Spark
  • Hands-on experience with AWS cloud services: SageMaker, Lambda, EKS, S3, Glue, EMR, Athena
  • Strong experience with Terraform or equivalent Infrastructure as Code (IaC) technologies
  • Experience with Docker and Kubernetes and containerized application deployment
  • Experience developing and managing CI/CD pipelines for ML applications and infrastructure
  • Strong understanding of ML model deployment, model serving, and inference workflows
  • Strong understanding of software development lifecycle, version control, testing, and deployment practices
  • Strong problem-solving, troubleshooting, and analytical skills
  • Ability to work effectively in a collaborative, cross-functional team environment
  • Ability to design reliable, scalable, and production-ready ML solutions
  • Exposure to MLOps platforms, tools, and best practices
  • Exposure to Big Data technologies and data engineering concepts
  • Understanding of cloud security, IAM, networking, monitoring, and AWS best practices
  • Experience with REST APIs, serverless architectures, and event-driven workflows

Frequently Asked Questions

How to apply for Data engineer II/MLOps Enginneer at VARITE INC?

Click the "Apply on Company Website" button on this page to submit your application directly on the employer's official portal.

What is the salary for this role?

The salary for this role is INR 1,800,000 - 1,800,000/yr per annum.

What experience is required?

2+ years of experience is required.

Is this position still open?

Yes, currently active and accepting applications.

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VI

VARITE INC

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Data engineer II/MLOps Enginneer

VARITE INC · Gurugram

Apply on Company Website