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Home / Jobs / Credit Acceptance
Posted today · be early

Staff Machine Learning Engineer (Employer of Record)

Credit Acceptance

IndiaremotePosted today
Credit Acceptance logo

Skill Required

Staff-Machine-Learning-EngineerMachine-Learning-EngineerGenerative-AI-EngineerAI-EngineerMLOps-EngineerSr.-Staff-Machine-Learning-EngineerStaff-ML-EngineerSenior-Staff-Machine-Learning-EngineerStaff-Machine-Learning-ScientistStaff-Machine-Learning-EngineeringStaff-AI-EngineerSr.-Staff-AI-EngineerStaff-Applied-AI-EngineerStaff-AI-Software-EngineerMachine Learning EngineerMachine Learningsoftware engineeringDeep LearningGenerative AIEngineeringStatisticsLangChainObservabilityData StructuresdesigningsecuritybuildingXGBoostdesignDesign PatternsjQueryRAGandAIFulltime

Key highlights

  • Salary range: ₹63,55,839 - ₹93,21,897 CTC
  • Required: PhD with 5+ years or MS with 8+ years in ML/SE
  • Key benefit: Locally compliant payroll, benefits, and statutory coverage through EoR
  • Must overlap with U.S. business hours
  • Role involves building enterprise-grade LLM-powered solutions and GenAI systems
  • Position is via Employer of Record in India

Role overview

Credit Acceptance, an award-winning used car finance company, is seeking a machine learning professional to join a globally distributed team. The role focuses on designing, building, and scaling AI/ML solutions, including large language models, generative AI, and ML operations, in collaboration with U.S. business partners. The position is based in India through an Employer of Record partner, with expectations to work across U.S. business hours.

Responsibilities

  • Explore and apply advanced machine learning techniques, including not limited to large language models (LLMs), deep learning, and graph neural networks, to solve complex challenges across the organization.
  • Collaborate with management and stakeholders to define strategic roadmaps and translate them into actionable quarterly plans.
  • Drive execution and delivery of ML/AI solutions by managing priorities, deadlines, and deliverables, leveraging your technical expertise.
  • Troubleshoot and resolve complex technical issues to improve system reliability, scalability, and operational efficiency.
  • Ensure the security, scalability, and architectural integrity of feature designs through reviews across teams.
  • Deliver hands-on solutions while mentoring other data professionals (including MLEs) within the organization
  • Mentoring: Mentor team members on design principles, coding standards, and the adoption of AI productivity tools.
  • Recommendations – Personalize guidance across different surfaces using deep learning methods; personalize layouts with Bayesian contextual multi-armed bandits
  • Growth: Foster long-term growth through data-driven causality and incrementality
  • Gen-AI: Power existing applications with Gen AI models and engineering to improve downstream experience and decisions
  • Lifecycle - Using ML models (such as XGBoost & Causal Meta-Learner-based model, etc), proactively guide business teams across different areas
  • Engineering - With engineering partners, build ML and Gen-AI platform and inference pipelines for different types of models
  • Architect and implement enterprise-grade LLM-powered solutions, managing the full lifecycle from business requirements to production deployment, monitoring, and continuous optimization
  • Design and develop multi-agent GenAI systems using state-of-the-art frameworks (LangChain, LlamaIndex) to orchestrate complex workflows across retrieval augmentation, data operations, and compliance verification
  • Engineer robust Retrieval Augmented Generation (RAG) pipelines incorporating advanced techniques such as hybrid retrieval, reranking, query expansion, and contextual compression
  • Implement parameter-efficient fine-tuning strategies (LoRA, QLoRA, PEFT) to adapt foundation models to domain-specific use cases while optimizing for inference costs and latency
  • Develop intelligent routing and orchestration systems to manage conversation state across multiple specialized AI agents, ensuring seamless transitions between different system capabilities
  • Build evaluation frameworks to measure and improve LLM performance across diverse metrics, including factuality, coherence, task completion, and alignment with business objectives
  • Integrate LLM solutions with existing enterprise architecture, ensuring compliance with data security policies, authentication mechanisms, and transaction safety requirements

Requirements

  • PhD in Computer Science, Stats, Economics, or a relevant technical field with at least 5+ years of relevant experience or MS with at least 8+ years of experience in machine learning and software engineering
  • ML Skills: 6+ years of hands-on experience designing, building and deploying AI (ML, DL, Gen-AI) models, including Reinforcement Learning algorithms, Recommendation systems, Transformers, fine-tuned LLMs, Causal Inference, Regressions, etc., with a solid understanding of mathematics, statistics, and engineering needed to build such infra
  • GenAI Skills: 4+ years of experience building and deploying AI/ML applications including Reinforcement algorithms, Recommendation systems, Generative AI etc. with solid understanding of mathematics, Computer Science, foundation concepts and engineering behind building AI applications and LLMs
  • Strong problem-solving skills with bias for action
  • Hands-on expertise in scaling and maintaining production-grade ML services, with a strong focus on ML/LLM Operations (versioning, automation, observability, automated training and monitoring, etc.) and ability to balance ML model complexity with production requirements
  • Passion for identifying new business opportunities and experience of using a test and learn approach to bring scalable and efficient solutions integrating AI algorithms, ML/LLM Ops, and s/w engineering
  • Experience partnering with the engineering, product, business operations, legal and other teams while designing, building, and executing solutions
  • Proficiency with model training/inference frameworks (PyTorch, TensorFlow, Hugging Face Transformers)
  • Experience building conversational AI (Text, Voice) , content generation, or code generation systems
  • Hands-on experience with building, fine-tuning and deploying multi-modal LLM Models and managing the end-to-end model lifecycle
  • Experience partnering with engineering, product, BizOps and other data teams while designing, building and executing solutions
  • Deep understanding in at least three of the following areas: data mining, advanced statistics, machine learning, deep learning (incl NLP)

Nice to have

  • Experience in the automotive industry, especially in building ML/AI systems while ensuring local and central regulations
  • Experience in model interpretability and responsible AI practices.
  • Expertise in data science, advanced experimentation and visualization techniques.
  • Experience in designing and implementing pipelines using DAGs (e.g., Kubeflow, DVC, Ray)
  • Ability to construct batch and streaming microservices exposed as gRPC and/or GraphQL endpoints
  • Experience with Databricks MLflow for ML lifecycle management and model versioning
  • Hands-on experience with Databricks Model Serving for production ML deployments
  • Demonstrable experience in parameter-efficient fine-tuning, model quantization, and quantization-aware fine-tuning of LLM models
  • Hands-on knowledge of Chain-of-Thoughts, Tree-of-Thoughts, Graph-of-Thoughts prompting strategies
  • Knowledge of multimodal AI (text, image, audio integration)

Benefits

  • You will receive locally compliant payroll, benefits, and statutory coverage through the EoR partner

Additional details

  • Credit Acceptance is proud to be an award-winning company with workplace recognition in multiple categories!
  • Our world-class culture is shaped by dedicated Team Members who share a drive to succeed as professionals and together as a company.
  • A great product, amazing people and our stable financial history have made us one of the largest used car finance companies in the United States.
  • In this role, you will work as a dedicated member of a globally distributed team, partnering closely with business partners in the U.S. to design, build, and scale solutions that directly impact our customers and operations.
  • While your legal employer will be our EoR partner, you will be fully integrated into our Credit Acceptance team for day-to-day work and collaboration.
  • Competencies: The following items detail how you will be successful in this role.
  • Customer Empathy: Customer Empathy is the ability to understand the perspectives, pain points, and experiences of customers. It involves actively putting oneself in the customer’s shoes, comprehending their needs and challenges, and using that understanding to provide a better, more customer-centric experience.
  • Engineering Excellence: Engineering Excellence is about bringing great craftsmanship and thought leadership to deliver an outstanding product that delights customers and solves for the business. This involves the pursuit and achievement of high standards, best practices, innovation, and superior solutions.
  • One Team: A One Team mindset refers to a collaborative approach across the organization, where individuals work together seamlessly, without boundaries, as a single, cohesive team. Shared goals, open communication and mutual support create a sense of collective purpose. This enables teams to navigate challenges and pursue shared objectives more effectively.
  • Owner’s Mindset: Owner’s Mindset involves adopting a set of behaviors that reflect a sense of responsibility, accountability, strategic thinking, and a proactive approach to managing your domain. As an owner, you understand the business and your domain(s) deeply and solve for the right outcome for the domain(s) and the business.
  • Required:
  • Preferred:
  • Knowledge and Skills:
  • CTC Range: ₹ 63,55,839 - ₹ 93,21,897
  • Total Compensation (CTC): Final CTC will be shared during the offer stage and will include all compensation components in detail as per EoR vendor's structure.
  • Final compensation within the range is influenced by many factors including role-specific skills, depth and experience level, industry background, relevant education and certifications.
  • This role is hired through an Employer of Record (EoR) partner in India.
  • You will be legally employed in India through our EoR partner
  • While your legal employer is the EoR partner, you will work full-time and be fully aligned to Credit Acceptance
  • Your day-to-day work, responsibilities, and performance expectations will be consistent with our global team members
  • Our Company Values:
  • To be successful in this role, Team Members need to be:
  • Positive by maintaining resiliency and focusing on solutions.
  • Respectful by collaborating and actively listening.
  • Insightful by cultivating innovation, accumulating business and role specific knowledge, demonstrating self-awareness and making quality decisions.
  • Direct by effectively communicating and conveying courage.
  • Earnest by taking accountability, applying feedback and effectively planning and priority setting.
  • Expectations:
  • Regularly overlap with U.S. business hours to support collaboration with global team members.
  • Remain compliant with our policies, processes and guidelines
  • All other duties as assigned
  • Attendance as required by department
  • Play the video below to learn more about our Company culture.
  • Originally posted on Himalayas

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LocationIndia
TypeFulltime
SalaryINR 6355839 - 9321897
Posted10/1/2026
Apply by11/30/2026

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