Staff Machine Learning Engineer

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Bengaluru, Karnataka, IND
In-Office
Artificial Intelligence • Cloud • Robotics • Software
The Role

About Us

Automation Anywhere is the leader in Agentic Process Automation (APA), transforming how work gets done with AI-powered automation. Its APA system, built on the industry’s first Process Reasoning Engine (PRE) and specialized AI agents, combines process discovery, RPA, end-to-end orchestration, document processing, and analytics—all delivered with enterprise-grade security and governance. Guided by its vision to fuel the future of work, Automation Anywhere helps organizations worldwide boost productivity, accelerate growth, and unleash human potential.

Key Responsibilities:

  • Develop and optimize machine learning models leveraging  NLP, Computer Vision, and GenAI.

  • Architect and implement scalable ML pipelines for training, validation, deployment, and monitoring of production models.

  • Drive the development of large-scale ML infrastructure, ensuring low-latency inference and efficient resource utilization across cloud and hybrid environments.

  • Implement MLOps best practices, automating model training, validation, deployment, and performance monitoring.

  • Work closely with data engineers, software engineers, and product teams to ensure seamless integration of ML solutions into production systems.

  • Optimize ML models for performance, scalability, and efficiency, leveraging techniques like quantization, pruning, and distributed training.

  • Enhance model reliability by implementing automated monitoring, CI/CD pipelines, and versioning strategies.

  • Lead efforts in data acquisition and preprocessing, including annotation and refinement of datasets to improve model accuracy.

  • Stay updated with state-of-the-art ML research, identifying opportunities to integrate new techniques and technologies into production systems.

  • Bachelor’s or Master’s Degree in Computer Science, Data Science, or related fields. Advanced degrees are a plus.

  • 6+ years of hands-on experience in building and deploying machine learning models, with a focus on NLP, Computer Vision, or GenAI solutions.

  • Proven experience deploying machine learning models into production environments, ensuring high availability, scalability, and reliability.

  • Proficiency with modern ML frameworks (e.g., TensorFlow, PyTorch).

  • Experience in building ML pipelines and implementing MLOps for automating and scaling machine learning workflows.

  • Strong programming skills in Python, R, SQL, and experience with big data technologies (e.g., Spark, Hadoop) for data processing and analytics.

  • Basic proficiency in at least one cloud-based ML services (e.g., AWS SageMaker, Azure ML, Google AI Platform) for training, deploying, and scaling machine learning models.

  • Hands-on experience with containerization (Docker), orchestration (Kubernetes), and model serving platforms (e.g., Triton Inference Server, ONNX) for production-ready ML deployments.

  • Familiarity with end-to-end ML pipelines, including data collection, feature engineering, model training, and model evaluation.

  • Knowledge of model optimization techniques (e.g., quantization, pruning) to improve inference performance on cloud or edge devices.

  • Excellent problem-solving skills, with the ability to break down complex challenges in document extraction and transform them into scalable ML solutions.

  • Strong communication skills, with the ability to articulate ML problems clearly and work autonomously.

Nice to Have:

  • Experience in fine-tuning large language models (LLMs) and applying GenAI techniques.

  • Experience with distributed training techniques to optimize large-scale model training across multiple GPUs or cloud environments.

  • Familiarity with CI/CD pipelines for ML, automated model versioning, and monitoring tools for performance and drift in production models.

All unsolicited resumes submitted to any @automationanywhere.com email address, whether submitted by an individual or by an agency, will not be eligible for an agency fee.

Automation Anywhere Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Automation Anywhere and has not been reviewed or approved by Automation Anywhere.

  • Fair & Transparent Compensation Pay is considered competitive to above average in many core roles, with sales and senior go-to-market positions noting strong on-target earnings and competitive packages. Feedback suggests several technical and leadership roles also view salary as a recurring strength.
  • Leave & Time Off Breadth Time off includes unlimited PTO in many postings, company holidays, volunteer days, and additional quarterly “Achievement Days” to unplug. Feedback suggests this breadth provides meaningful opportunities to rest and recharge.
  • Flexible Benefits Work practices emphasize flexible and hybrid arrangements, with remote options supported across roles. Feedback suggests this flexibility is a notable component of the total rewards experience.

Automation Anywhere Insights

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The Company
HQ: San Jose, CA
6,564 Employees
Year Founded: 2003

What We Do

Welcome to Automation Anywhere. We’re on a singular and unwavering mission to democratize automation and create a better future for everyone, liberating people from mundane, repetitive tasks, and allowing them more time to use their intellect and creativity. With 2.8M bots deployed at customers in 90 countries, and a network of over 2100 partners, we are a leader in the Gartner Magic Quadrant, and our AI-powered digital workforce platform optimizes the business processes of the world's largest enterprises and governments in virtually every industry including 85% of the top banks and financial institutions, 90% of the top healthcare institutions, 85% of the top technology companies, and 80% of the top telecom companies. Industry Awards and highlights: · Named a leader each year of Gartner Magic Quadrant for Robotic Process Automation · Named a Leader in Forrester Wave · Named a Leader and Star Performer in Everest Peak Matrix · Named a Leader in Nelson Hall NEAT Intelligent Automation Report · G2 Crowd 2020 Best Software Company · First Cloud-native digital workforce platform · 850+ pre-built, intelligent automation solutions · Bot security and IP protection · SaaS packages · Over 1.4M courses completed in Automation Anywhere University · Free AI-powered Community edition Try the world’s most advanced digital workforce platform today: https://bit.ly/startRPAtoday

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