Machine Learning Engineer

Reposted 9 Days Ago
Be an Early Applicant
2 Locations
In-Office
Mid level
Food • Software • Hospitality
PAR Tech offers a complete suite of front- and back-office products to serve the enterprise needs of restaurants.
The Role
Design, build, and deploy GenAI-powered microservices and recommendation systems using LLMs, embeddings, and RAG. Build scalable Databricks/PySpark pipelines, implement vector retrieval with FAISS/ChromaDB/Pinecone, maintain ML APIs, and implement MLOps (model versioning, monitoring, retraining) and CI/CD for production ML infrastructure on AWS.
Summary Generated by Built In

For over four decades, PAR Technology Corporation (NYSE: PAR) has been a leader in restaurant technology, empowering brands worldwide to create lasting connections with their guests. Our innovative solutions and commitment to excellence provide comprehensive software and hardware that enable seamless experiences and drive growth for over 100,000 restaurants in more than 110 countries. Embracing our "Better Together" ethos, we offer Unified Customer Experience solutions, combining point-of-sale, digital ordering, loyalty and back-office software solutions as well as industry-leading hardware and drive-thru offerings. To learn more, visit partech.com or connect with us on LinkedIn, X (formerly Twitter), Facebook, and Instagram.

Machine Learning Engineer

Location: Jaipur / Gurgaon, India

About the Role

PAR is looking for a technically exceptional Machine Learning Engineer to join our AI team and help shape the next generation of personalized customer engagement products. In this role, you will design, develop, and scale GenAI-powered services and machine learning infrastructure that power key product features such as campaign recommendations, personalized promotions, and customer intelligence.

This role is ideal for someone who is hands-on, performance-driven, and experienced in productionizing ML systems using modern data platforms such as AWS Bedrock, Databricks, LangChain, and LlamaIndex.

What You’ll Do
  • Design, develop, and deploy GenAI-powered microservices and recommendation systems using LLMs, embedding models, and Retrieval-Augmented Generation (RAG).

  • Build scalable data pipelines using Databricks, PySpark, and Delta Lake for model training, feature engineering, and real-time or batch inference.

  • Develop and maintain high-performance ML APIs using FastAPI, Flask, or similar frameworks.

  • Implement retrieval pipelines using vector databases such as FAISS, ChromaDB, or Pinecone to enable hybrid search and personalization.

  • Collaborate closely with product, engineering, and data teams to integrate ML capabilities into customer-facing applications and dashboards.

  • Implement ML Ops best practices including model versioning, evaluation, monitoring, and automated retraining using MLflow or similar tools.

  • Design and maintain CI/CD workflows for ML pipelines using tools such as GitHub Actions, Databricks Repos, or similar.

  • Contribute to architectural decisions around LLM orchestration, multi-model systems, and infrastructure optimization on AWS.

  • Communicate technical solutions clearly and provide actionable recommendations to cross-functional stakeholders.

What You’ll Need
  • 3+ years of hands-on experience working on production Machine Learning projects.

  • Master’s or PhD in Computer Science, Machine Learning, AI, or related field.

  • Strong knowledge of machine learning algorithms, recommendation systems, and NLP.

  • Hands-on experience with LLM frameworks such as Hugging Face, LangChain, OpenAI, Cohere, or similar.

  • Strong programming skills in Python with experience in scalable, production-grade system design.

  • Advanced experience with Databricks, including MLflow, notebooks, pipelines, and job orchestration.

  • Experience with cloud platforms (AWS preferred), including S3, Lambda, ECS/EKS, SageMaker, and Step Functions.

  • Experience with modern data platforms such as Delta Lake, Elasticsearch, Redis, NoSQL databases, or columnar storage systems.

  • Strong communication skills and ability to work effectively with global teams.

  • Flexibility to collaborate across time zones, including occasional overlap with teams in PST and EST.

Preferred Qualifications
  • Experience building recommendation systems in hospitality, restaurant, or digital marketing domains.

  • Experience fine-tuning or building custom LLMs or embedding models.

  • Experience developing enterprise-scale Text-to-SQL or conversational AI systems.

  • Experience working with vector databases such as Pinecone, Weaviate, FAISS, or ChromaDB.

  • Contributions to open-source ML, AI, or GenAI projects.

PAR is proud to provide equal employment opportunities (EEO) to all employees and applicants for employment without regard to race, color, religion, sex, national origin, age, disability or genetics. We also provide reasonable accommodations to individuals with disabilities in accordance with applicable laws. If you require reasonable accommodation to complete a job application, pre-employment testing, a job interview or to otherwise participate in the hiring process, or for your role at PAR, please contact [email protected]. If you’d like more information about your EEO rights as an applicant, please visit the US Department of Labor's website. 

Top Skills

Aws Bedrock
Aws Ecs
Aws Eks
Aws Lambda
Aws S3
Aws Sagemaker
Aws Step Functions
Chromadb
Cohere
Columnar Storage
Databricks
Databricks Repos
Delta Lake
Elasticsearch
Faiss
Fastapi
Flask
Github Actions
Hugging Face
Langchain
Llamaindex
Mlflow
NoSQL
Openai
Pinecone
Pyspark
Python
Redis
Weaviate
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The Company
HQ: New Hartford, NY
2,000 Employees
Year Founded: 1968

What We Do

PAR is a leading global provider of software, systems, and service solutions to the restaurant and retail industries. Today, with 50+ years of experience and point of sale systems in nearly 100,000 restaurants and more than 110 countries, PAR is redefining the point of sale through cloud software and bringing technological innovation to all corners of the enterprise. PAR Technology Corporation's stock is traded on the New York Stock Exchange under the symbol PAR. For more information, visit www.partech.com. PAR Technology was founded in 1968 and its current CEO is Savneet Singh. Since its inception 55 years ago, PAR Technology has grown to 1500 employees.

Why Work With Us

At PAR, we believe we’ll win or lose through the culture we build. Our culture is built on 4 values: Speed, Ownership, Focus and Winning Together. For PAR to win, we need our customers, our employees, our suppliers, our shareholders, and our community to succeed. We believe by committing to these values in all our endeavors.

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