Research Engineer III

Smarsh

Posted 3 months ago

Internship

,

Remote OK

Smart Summary

Responsibilities

Build and maintain Apache Airflow DAGs and SageMaker training jobs for NLP model orchestration. Implement MLflow tracking and infrastructure-as-code using Terraform for AWS services.

Qualifications

You have experience with PyTorch, transformers, or other ML libraries, and are familiar with ML model evaluation and experimentation. You are comfortable with Linux/command-line environments and have knowledge of AWS services like S3, SageMaker, and IAM. Exposure to Apache Airflow or workflow orchestration is also expected.

Must Have Skills for ATS

PyTorch

transformers

MLflow

Terraform

AWS S3

AWS IAM

AWS VPC

AWS SageMaker

Linux

Apache Airflow

Job Description

Who are we?

Smarsh empowers its customers to manage risk and unleash intelligence in their digital communications. Our growing community of over 6500 organizations in regulated industries counts on Smarsh every day to help them spot compliance, legal or reputational risks in 80+ communication channels before those risks become regulatory fines or headlines.  Relentless innovation has fueled our journey to consistent leadership recognition from analysts like Gartner and Forrester, and our sustained, aggressive growth has landed Smarsh in the annual Inc. 5000 list of fastest-growing American companies since 2008.

Join our team building production ML infrastructure for enterprise-scale machine learning pipelines.You'll work on a platform that orchestrates end-to-end ML workflows from data ingestion through model training,  evaluation, and deployment.

\nHow will you contribute?
  • Build and maintain Apache Airflow DAGs for ML pipeline orchestration            
  • Develop SageMaker training jobs for NLP models (NeMo, PyTorch)
  •  Implement MLflow tracking and model registry integrations                       
  •  Write infrastructure-as-code using Terraform (AWS S3, IAM, VPC)                 
  •  Create comprehensive tests for ML pipeline components                           
  • Follow spec-driven development practices with Claude Code             
  •  Contribute to ML observability and evaluation frameworks                        
What will you bring?
  • Experience with PyTorch, transformers, or other ML libraries                         
  • Familiarity with ML model evaluation and experimentation                        
  •  Interest in ML/AI infrastructure and operations
  •  Strong problem-solving and debugging skills                                     
  • Comfortable with Linux/command-line environments                                                                                      
  • Knowledge of AWS services (S3, SageMaker, IAM)                                 
  • Exposure to Apache Airflow or workflow orchestration                            
  • Understanding of CI/CD, testing, or infrastructure-as-code  
\n$25 - $25 an hour\n

About our culture

Smarsh hires lifelong learners with a passion for innovating with purpose, humility and humor. Collaboration is at the heart of everything we do. We work closely with the most popular communications platforms and the world’s leading cloud infrastructure platforms. We use the latest in AI/ML technology to help our customers break new ground at scale. We are a global organization that values diversity, and we believe that providing opportunities for everyone to be their authentic self is key to our success. Smarsh leadership, culture, and commitment to developing our people have all garnered Comparably.com Best Places to Work Awards. Come join us and find out what the best work of your career looks like.

Smarsh

Smarsh is the global leader in communications data and intelligence — enabling companies worldwide to transform oversight into foresight. Serving the top banks, insurers, investment firms, and government agencies since 2002, Smarsh delivers an innovative portfolio of AI-enabled solutions that help organizations stay compliant, mitigate risk, and unlock the value of their digital communications data.
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