Senior Machine Learning Engineer

DailyPay

Minneapolis (MN)

On-site

USD 150,000 - 210,000

Full time

14 days+
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Job summary

DailyPay is seeking a Senior Machine Learning Engineer to join our AI & ML team in New York City. You will scale ML infrastructure, ensure reliability, and drive MLOps across production models.

You will work with data scientists, engineers, and product stakeholders to deliver high-quality ML solutions that impact core products. You will own platform design, deploy scalable pipelines on cloud, build CI/CD, and mentor engineers while upholding security and compliance standards.

Qualifications

  • 5+ years of experience in ML engineering, MLOps, or data engineering.
  • Proficiency in Python and ML frameworks (scikit-learn, TensorFlow, PyTorch).
  • Strong CI/CD experience and deployment pipeline design.
  • Experience with infrastructure-as-code (Terraform or CloudFormation).
  • Knowledge of event streaming platforms (Kafka).
  • Experience with monitoring/observability tools (Datadog, Prometheus, Grafana).
  • Strong SQL and data pipeline tooling (dbt, Glue, Snowflake).
  • Excellent communication across data science, engineering, and product teams.

Responsibilities

  • Own design and delivery of DailyPay's unified ML platform for model development, deployment, and monitoring.
  • Design and implement scalable ML pipelines covering training, deployment, monitoring, and retraining.
  • Manage and optimize AWS infrastructure for ML workloads.
  • Build and maintain robust CI/CD pipelines for ML models and related infrastructure.
  • Provide technical leadership and mentor junior engineers; help set team norms.
  • Ensure security and compliance across ML pipelines and data handling.

Skills

MLOps
Python
CI/CD
AWS
Terraform
Datadog
Kafka
SQL

Tools

AWS SageMaker
AWS Lambda
AWS S3
AWS EC2
AWS IAM
AWS ECS
Vertex AI
Cloud Functions
GCS
Compute Engine
Cloud Run
Terraform
CloudFormation
Docker
Kubernetes
Datadog
Prometheus
Grafana
dbt
Snowflake
Kafka

Job description

About Us: DailyPay is the leader in On-Demand Pay, helping employers modernize how people get their pay. DailyPay serves more than 1,900 employers and over 6 million employees, including many of the world's most recognized brands. By providing real-time access to earned pay and financial wellness tools, DailyPay helps employees manage their finances and helps employers attract and retain talent. DailyPay is helping define the future of pay, where money moves at the speed of work.. Learn more at DailyPay's Press Center.

The Role:

We are seeking a Senior Machine Learning Engineer to join our AI & ML team in New York City. You will play a key role in maturing and scaling our machine learning infrastructure, ensuring the reliability, performance, and scalability of ML models in production. This role requires deep hands-on experience with MLOps principles, cloud infrastructure, and a track record of delivering robust ML systems in a fast-moving environment.

You will work closely with data scientists, engineers, and product stakeholders to deliver high-quality ML solutions that directly impact DailyPay's core products. You are expected to operate with significant autonomy: defining work, identifying dependencies, and raising the bar for the team around you.

How You Will Make an Impact:
  • Platform Ownership: Help architect and build DailyPay's unified ML platform - a unified system for model development, deployment, and monitoring that serves as the backbone for every AI and ML capability at the company.
  • MLOps Architecture & Delivery: Design and implement scalable ML pipelines covering model training, deployment, monitoring, and retraining. Own the delivery of end-to-end MLOps solutions with minimal oversight.
  • Cloud Infrastructure: Manage and optimize AWS infrastructure for machine learning workloads, balancing cost-effectiveness, security, and availability.
  • CI/CD Pipeline Development: Build and maintain robust CI/CD pipelines for continuous integration and deployment of ML models and related infrastructure.
  • Monitoring & Observability: Design monitoring and alerting systems for ML infrastructure and models using tools like Datadog. Proactively identify and resolve issues before they impact production.
  • Technical Leadership: Lead design discussions, contribute to architectural decisions, and establish team norms for how ML systems are built, tested, and maintained. Help identify and remove blockers.
  • Mentorship: Mentor junior engineers. Share domain knowledge and help build genuine technical depth on the team.
  • Security & Compliance: Approach all engineering work with a security lens. Actively look for vulnerabilities in code and during peer reviews. Ensure ML pipelines handle sensitive data in accordance with company policy.
What You Bring to the Team:
  • 5+ years of experience in machine learning engineering, MLOps, or data engineering
  • Strong cloud platform proficiency: AWS preferred (SageMaker, Lambda, S3, EC2, IAM, ECS), or equivalent GCP (Vertex AI, Cloud Functions, GCS, Compute Engine, Cloud Run) or Azure (Azure ML, Functions, Blob Storage, VMs, AKS) experience
  • Proficiency in Python and experience with ML frameworks (scikit-learn, TensorFlow, PyTorch)
  • Solid CI/CD experience: GitHub Actions or equivalent; designing and operating deployment pipelines
  • Experience with infrastructure-as-code (Terraform or CloudFormation)
  • Knowledge of event streaming platforms (Apache Kafka or equivalent)
  • Experience with monitoring and observability tooling (Datadog, Prometheus, or Grafana)
  • Strong SQL skills and experience with data pipeline tooling (dbt, Glue, Snowflake)
  • Excellent communication skills; comfortable working across data science, engineering, and product teams
Nice to Haves:
  • Experience with containerization and orchestration (Docker, Kubernetes)
  • Familiarity with microservices architecture and RESTful API design
  • Experience in fintech or regulated industries
  • Contributions to open-source ML or MLOps projects

High-performing cultures aren't built in silos, they thrive on partnership. At DailyPay, we Commit Together to an inclusive, professional environment where multifaceted perspectives are our greatest competitive advantage. We recognize that our team members don’t live “single-issue lives,” and we lean into the wide-ranging backgrounds and life stages that sharpen our collective decision‑making.

In our high‑trust environment, we empower you to Challenge Norms. We’ve created a space where it is safe to ask difficult questions, disrupt the status quo, and share bold perspectives without fear of professional fallout. We believe that by checking our own assumptions and staying curious about the experiences of others, we arrive at better, more innovative results.

We provide the space for you to do your best work through peer advocacy and transparent career development. If you are looking for a culture that values intellectual honesty, celebrates the unique lived experiences of its people, and thrives on collective success, you’ll find it here.

If you require reasonable accommodation for any aspect of the recruitment process, please send a request to peopleops@dailypay.com. All requests for accommodation will be addressed as confidentially as practicable.

DailyPay is an equal opportunity employer. All qualified applicants will receive consideration without regard to race, color, religion or creed, alienage or citizenship status, political affiliation, marital or partnership status, age, national origin, ancestry, physical or mental disability, medical condition, veteran status, gender, gender identity, pregnancy, childbirth (or related medical conditions), sex, sexual orientation, sexual and other reproductive health decisions, genetic disorder, genetic predisposition, carrier status, military status, familial status, or domestic violence victim status and any other basis protected under federal, state, or local laws.

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