Machine Learning Engineer
Sift
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This role on the market
1,074 open learning roles across 262 companies are on ApplySarthi right now, most of them in Bengaluru (63), Hyderabad (24), Delhi NCR (14).
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What learning roles keep asking for: Machine learning (48%), Python (35%), LLMs (22%), PyTorch (22%), Deep learning (16%), AWS (13%), Generative AI (13%) — counted across their open postings here.
Machine Learning Engineer jobs in the United States · Machine Learning Engineer jobs in Seattle · Machine Learning Engineer jobs in San Francisco · Remote Machine Learning Engineer jobs · CI/CD jobs · Customer success jobs · Databricks jobs · Deep learning jobs
Sift has 7 open roles listed here.
- Technical Account Manager
- Senior Engineering Manager, ML Platform
- Director/Sr. Director, Sales
- Forward Deployed Engineer, Trust and Safety
- Contracts & Legal Ops Specialist
Counted across 14 company job boards, updated as roles open and close.
Preparing for this interview
Interviews for learning roles keep coming back to Machine learning, Python, LLMs, PyTorch. Practise those questions before you sit with Sift.
Questions you are likely to be asked
- Why do you want to join Sift?
- What is your experience with Machine learning? Tell me one thing you learned the hard way.
- How did you know your model was actually good, and not just good on your test set?
- Tell me about a time the data was messy or wrong. What did you do?
- How would you explain your model's result to someone who is not technical?
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Practise the Machine Learning Engineer at Sift interview free →The Role: As a Machine Learning Engineer at Sift, you will bridge the gap between data science and large-scale distributed systems. You won’t just train models in isolation; you will build end-to-end pipelines that extract signals, train custom models per merchant, and serve predictions at production scale with low latency. You will work on an automated machine learning ecosystem that dynamically recalibrates models based on streaming global telemetry data. What You'll Do: Model Development & Refinement: Design, build, and deploy online machine learning models (including ensemble methods, deep learning, transformer architectures and graph-based models) to catch evolving fraud vectors in real time. Feature Engineering at Scale: Engineer high-frequency time-series features from over 1 trillion behavioral events, optimizing for low-latency signal extraction and pattern recognition. Production MLOps: Maintain and enhance our automated model training and deployment infrastructure, ensuring frictionless continuous integration and continuous deployment (CI/CD) of newly trained models. System Optimization: Write high-performance code to minimize scoring latency at runtime, ensuring our core ML services scale seamlessly across distributed databases. Collaborative Innovation: Work cross-functionally with Core Infrastructure, Product Management, and Data Science teams to translate business-level fraud patterns into robust algorithmic solutions. What We Are Looking For (Requirements): Experience: 4+ years of professional experience building and deploying large-scale machine learning models into high-traffic production environments. Solid Programming Foundations: Strong proficiency in Java or Scala (for our production backend) as well as Python (for data analysis and model prototyping). Distributed Systems & Big Data: Practical experience with Databricks and big data processing frameworks like Apache Spark , Apache Flink , or Hadoop, and working with NoSQL data stores like Bigtable . Strong Mathematical Foundations: Deep understanding of statistical modeling, probability, and standard machine learning algorithms (e.g., XGBoost, Random Forests, Neural Networks, and Clustering techniques). System Design Mentality: Ability to reason through data consistency, pipeline failures, and performance constraints in a distributed, multi-tenant cloud environment (GCP). Bonus Points (Preferred Qualifications): Experience explicitly in the fraud detection, risk mitigation, or cyber-security domains. Deep knowledge of streaming architectures (e.g., Apache Kafka ). Familiarity with containerization and orchestration tools like Docker and Kubernetes . Familiarity with leveraging AI coding assistants (e.g., Claude Code) to accelerate development and model prototyping Please note : final stage candidates may be asked to travel for in-person final round interviews. Let’s build it together: At Sift, we are intentionally building a diverse, equitable, and inclusive workplace. We believe that diversity drives innovation, equity is a fundamental right, and inclusion is a basic human need. We envision a place where all Sifties feel secure sharing their authentic selves and diverse experiences with their teams, their customers, and their community – ultimately using this empowerment and authenticity to build trust and create a safer Internet. This document provides transparency around how Sift handles the personal data of job applicants: https://sift.com/recruitment-privacy A little about us: Sift is the AI-powered fraud platform securing digital trust for leading global businesses. Our deep investments in machine learning and user identity, a data network scoring 1 trillion events per year, and a commitment to long-term customer success empower more than 700 customers to grow fearlessly. Global brands rely on Sift to unlock growth and deliver seamless consumer experiences. Visit us at sift.com and follow us on LinkedIn .
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Listed on ashby · posted 2026-07-20. ApplySarthi collects openings and links to application pages; the role is advertised by Sift, not by us.