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Machine Learning Operations Engineer Job Opening In Bengaluru – Now Hiring Aurigo Software Technologies


Job description

Role Brief:

We are seeking a skilled ML Ops Engineer to design, implement, and maintain scalable machine learning and large language model (LLM) pipelines in cloud environments, primarily using AWS services.

This role is critical to ensuring the reliability, efficiency, and performance of ML systems in production.

The ideal candidate will have hands-on experience with AWS tools such as SageMaker, Lambda, Bedrock, Batch with Fargate, and infrastructure components like RDS, DynamoDB, and SQS.

You will be responsible for automating CI/CD workflows, managing auto-scaling APIs, and provisioning cloud resources to support high-performance ML workloads, including RAG systems.


Primary Responsibilities:

  • Strategizing and implementing scalable infrastructure for ML or LLM model pipelines using tools like and cloudservices such as AWS (e.G.,AWS Batch, Fargate,Bedrock)
  • Manage auto-scaling mechanisms to handle varying workloads and ensure high availability of Rest APIs
  • Automate CI/CD pipelines and Lambda functions for model testing, deployment, and updates, reducing manual errorsand improving efficiency.
  • Amazon SageMaker Pipelines for end-to-end ML workflow automation.

    Optimize utilizing step-functions
  • Conduct drift analysis to detect and respond to data drift, concept drift, and label drift.

    Implement mitigation strategies such as automated alerts, model retraining triggers, and performance audits.
  • Set up reproducible workflows for data preparation, model training, and deployment.
  • Provision and optimize cloud resources (e.G., GPUs, memory) to meet computational demands of large models like those used in RAG systems
  • Automate retraining workflows to keep models updated as data evolves
  • Work closely with data scientists, ML engineers, and DevOps teams to integrate models into production environments.
  • Implement monitoring tools to track model performance and detect issues like drift or degradation in real- time.

    Monitoring dashboards with real-time alerts for pipeline failures or performance issues C Implementing ModelObservability frameworks.


Required Skills:

  • Education Any Engineering (BE/Btech/ME/Mtech)
  • Min 4 years of experience with AWS services such as Lambda, Bedrock, Batch with Fargate, RDS (PostgreSQL), DynamoDB, SQS, CloudWatch, API Gateway, SageMaker
  • Should have hands-on experience in drift analysis, including detecting and mitigating data, concept, and label drift in production ML systems
  • Knowledge of ML frameworks (e.G., PyTorch, TensorFlow) to understand model requirements during deployment
  • Experience with Rest API Frameworks like Fast APIs, Flask
  • Familiarity with model observability like Evidently, Nanny ML, Phoenix and monitoring tools (Grafana etc) and retraining tools like MLflow/ Kubeflow / Airflow
  • AWS Certified Machine Learning – Specialty – Good to have this certification

Required Skill Profession

Computer Occupations


  • Job Details

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Unlock Your Machine Learning Potential: Insight & Career Growth Guide


Real-time Machine Learning Jobs Trends (Graphical Representation)

Explore profound insights with Expertini's real-time, in-depth analysis, showcased through the graph here. Uncover the dynamic job market trends for Machine Learning in Bengaluru, India, highlighting market share and opportunities for professionals in Machine Learning roles.

19853 Jobs in India
19853
1612 Jobs in Bengaluru
1612
Download Machine Learning Jobs Trends in Bengaluru and India

Are You Looking for Machine Learning Operations Engineer Job?

Great news! is currently hiring and seeking a Machine Learning Operations Engineer to join their team. Feel free to download the job details.

Wait no longer! Are you also interested in exploring similar jobs? Search now: .

The Work Culture

An organization's rules and standards set how people should be treated in the office and how different situations should be handled. The work culture at Aurigo Software Technologies adheres to the cultural norms as outlined by Expertini.

The fundamental ethical values are:

1. Independence

2. Loyalty

3. Impartiapty

4. Integrity

5. Accountabipty

6. Respect for human rights

7. Obeying India laws and regulations

What Is the Average Salary Range for Machine Learning Operations Engineer Positions?

The average salary range for a varies, but the pay scale is rated "Standard" in Bengaluru. Salary levels may vary depending on your industry, experience, and skills. It's essential to research and negotiate effectively. We advise reading the full job specification before proceeding with the application to understand the salary package.

What Are the Key Qualifications for Machine Learning Operations Engineer?

Key qualifications for Machine Learning Operations Engineer typically include Computer Occupations and a list of qualifications and expertise as mentioned in the job specification. The generic skills are mostly outlined by the . Be sure to check the specific job listing for detailed requirements and qualifications.

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Interview Tips for Machine Learning Operations Engineer Job Success

Aurigo Software Technologies interview tips for Machine Learning Operations Engineer

Here are some tips to help you prepare for and ace your Machine Learning Operations Engineer job interview:

Before the Interview:

Research: Learn about the Aurigo Software Technologies's mission, values, products, and the specific job requirements and get further information about

Other Openings

Practice: Prepare answers to common interview questions and rehearse using the STAR method (Situation, Task, Action, Result) to showcase your skills and experiences.

Dress Professionally: Choose attire appropriate for the company culture.

Prepare Questions: Show your interest by having thoughtful questions for the interviewer.

Plan Your Commute: Allow ample time to arrive on time and avoid feeling rushed.

During the Interview:

Be Punctual: Arrive on time to demonstrate professionalism and respect.

Make a Great First Impression: Greet the interviewer with a handshake, smile, and eye contact.

Confidence and Enthusiasm: Project a positive attitude and show your genuine interest in the opportunity.

Answer Thoughtfully: Listen carefully, take a moment to formulate clear and concise responses. Highlight relevant skills and experiences using the STAR method.

Ask Prepared Questions: Demonstrate curiosity and engagement with the role and company.

Follow Up: Send a thank-you email to the interviewer within 24 hours.

Additional Tips:

Be Yourself: Let your personality shine through while maintaining professionalism.

Be Honest: Don't exaggerate your skills or experience.

Be Positive: Focus on your strengths and accomplishments.

Body Language: Maintain good posture, avoid fidgeting, and make eye contact.

Turn Off Phone: Avoid distractions during the interview.

Final Thought:

To prepare for your Machine Learning Operations Engineer interview at Aurigo Software Technologies, research the company, understand the job requirements, and practice common interview questions.

Highlight your leadership skills, achievements, and strategic thinking abilities. Be prepared to discuss your experience with HR, including your approach to meeting targets as a team player. Additionally, review the Aurigo Software Technologies's products or services and be prepared to discuss how you can contribute to their success.

By following these tips, you can increase your chances of making a positive impression and landing the job!

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