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Paylocity

Staff Machine Learning Engineer

Paylocity · United States

  • Hybrid
  • Full-time
  • $146,600 / year
  • United States
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Job highlights

  • Build and deploy scalable ML solutions.
  • Develop infrastructure for ML/AI features.
  • Collaborate with data science and engineering teams.
  • Optimize CI/CD workflows and automation.
  • Drive best practices in ML engineering.

About the role

About Paylocity

Paylocity is an award-winning provider of cloud-based HR and payroll software solutions, offering the most complete platform for the modern workforce. The company has become one of the fastest-growing HCM software providers worldwide by offering an intuitive, easy-to-use product suite that helps businesses automate and streamline HR and payroll processes, attract and retain talent, and build a strong workplace culture.

While traditional HR and payroll providers automate basic HR processes such as payroll and benefits administration, Paylocity goes further by developing tools that HR and businesses need to compete for talent and deliver against the expectations of the modern workforce.

We give our employees what they need to succeed, including great benefits and perks! We offer medical, dental, vision, life, disability, and a 401(k) match, as well as perks that support you, your family, and your finances. And if it’s career development you desire, we provide that, too! At Paylocity, people matter most and have always been at the heart of our business.

Help Paylocity enhance communication and enable employees to connect, collaborate, and create from anywhere with a position in Product & Technology! Want to develop the strategies and principles needed to deliver compelling software? Join our team and help us enhance our all-in-one software platform, elevate our one-of-a-kind technology, and improve the employee experience. Take your career to the next level at one of G2's Top 100 Software Companies. Explore our Product & Technology positions to see where you fit!

Position Overview

Paylocity is growing its Machine Learning Engineering organization! Our machine learning engineering team is responsible for developing infrastructure and tooling to help enable data driven decisions and insights at scale for millions of Paylocity users.

As a Staff Machine Learning Engineer in Product & Technology, you will help Paylocity build and deploy Machine Learning solutions, to help our teams build better products faster, more reliably, and at the scale we see in production for our customers. We develop machine learning models and infrastructure to support internal team strategies and collaborate closely with our data science organization to drive efficiency and best practices. Your primary focus will be to leverage your expertise in software development, machine learning algorithms, and data infrastructure to architect, develop, and optimize machine learning solutions. You will play a key role in driving the development of scalable and efficient machine learning models, contributing to the enhancement of product features, and the overall improvement of our infrastructure.

Our Team Is

  • Building infrastructure that can power ML and AI features for millions of users
  • Building and deploying platform-wide recommendations to help companies follow HR best practices and allow employees to get the most out of our platform (Paylocity AI page)
  • Baking AI Ethics into all of our processes as a first-class citizen (Blog Post)
  • Working in a collaborative fully remote environment with a desire to share ideas and continuously improve
  • Invested in staying current in machine learning engineering by applying the newest tools, technologies, and practices
  • Excited to work on cutting-edge technology!

Primary Responsibilities

  • Collaborate closely with internal teams such as Data Science, Data Engineering, Paylocity’s Cloud Center of Excellence (CCOE), DevOps, and Delivery Platforms to understand requirements and ensure alignment of machine learning engineering solutions with overall business objectives and priorities.
  • Leverage cutting-edge big data technologies on AWS utilizing Databricks and Spark to develop scalable and efficient machine learning solutions for millions of users.
  • Create automated data and modeling pipelines, collaborating with internal teams to ensure smooth integration and deployment of machine learning software features.
  • Lead the optimization of CI/CD workflows, ensuring scalability and resilience while addressing complex challenges in automation in partnership with DevOps and Delivery Platforms.
  • Proactively identify and resolve issues/bugs, ensuring AppSec vulnerabilities are identified and corrected, working closely with Application Security and CCOE teams.
  • Drive the adoption of best practices in machine learning engineering across teams, contributing to the development of formal training programs and materials for MLE tool adoption.
  • Actively participate in cross-functional meetings and discussions, providing feedback, commentary, requirements, and questions to ensure alignment and drive project success.

Education And Experience

The below represents the primary duties of the position, others may be assigned as needed. To perform this job successfully, an individual must be able to perform each essential duty satisfactorily. The requirements listed below are representative of the knowledge, skill, and/or ability required. Reasonable accommodations may be made to enable individuals with disabilities to perform the essential functions.

  • Bachelor’s degree with 8 years of machine learning engineering or similar experience at software companies; or, advanced degree (master’s or PhD) in machine learning engineering, data engineering, computer science, engineering, statistics, mathematics, data science, or other quantitative field, with 3 years of demonstrated machine learning engineering success or similar experience.
  • Experience in building production-grade machine learning models and infrastructure in Python.
  • Strong background in advanced Python and big data technologies
  • Experience with cloud infrastructure (i.e., AWS, GCP, or Azure).
  • Demonstrated experience with Infrastructure as Code (IAC) tools (i.e. CDK, Pulumi, etc.).
  • Demonstrated ability to leverage machine learning engineering to drive business results.
  • Skilled at translating business problems into machine learning engineering problems and communicating the results to non-technical audiences.
  • Able to work in a collaborative environment with a desire to share your ideas.
  • Able to work independently and complete tasks with high quality, but unafraid to seek out suggestions from other team members.
  • Strong understanding of data engineering and software engineering fundamentals.
  • Self-motivated, adaptable, and highly detail oriented.

Preferred Skills

  • Professional or academic experience in HR, social science or psychology
  • Contributions to open-source software in Python
  • Enthusiastic about how machine learning and infrastructure can lead to a superior customer experience.
  • Be invested in staying current in machine learning and infrastructure by applying new technologies and practices.

Physical Requirements

  • Ability to sit for extended periods: The role requires sitting at a desk or workstation for long periods, typically 7-8 hours a day.
  • Use of computer and phone systems: The employee must be able to operate a computer, use phone systems, and type. This includes using multiple software programs and inquiries simultaneously.

Key skills/competency

  • Machine Learning Engineering
  • Python
  • AWS
  • Databricks
  • Spark
  • Infrastructure as Code (IAC)
  • CI/CD
  • Data Engineering
  • Software Engineering
  • Big Data Technologies

Skills & topics

  • Machine Learning Engineer
  • Staff Machine Learning Engineer
  • ML Engineer
  • Python
  • AWS
  • Databricks
  • Spark
  • Big Data
  • Infrastructure as Code
  • CI/CD
  • Data Engineering
  • Software Engineering
  • Remote
  • HCM
  • HR Tech

How to get hired

  • Tailor your resume: Highlight your experience with Python, AWS, Databricks, Spark, and CI/CD for the Staff Machine Learning Engineer role.
  • Showcase your impact: Quantify achievements in building production-grade ML models and infrastructure.
  • Prepare for technical interviews: Brush up on algorithms, data structures, and cloud-native ML deployment strategies.
  • Understand Paylocity's mission: Research their cloud-based HR and payroll solutions and their commitment to AI ethics.
  • Network and connect: Engage with current employees on LinkedIn to gain insights into the team culture.

Technical preparation

Master Python and ML libraries.,Practice AWS, Databricks, and Spark.,Build production ML model examples.,Familiarize with CI/CD and IAC tools.

Behavioral questions

Describe a complex ML problem you solved.,How do you collaborate with non-technical teams?,Share an experience driving best practices.,How do you stay updated on ML trends?

Frequently asked questions

What are the core responsibilities for a Staff Machine Learning Engineer at Paylocity?
As a Staff Machine Learning Engineer at Paylocity, you will architect, develop, and optimize ML solutions, build and deploy ML infrastructure, create automated data and modeling pipelines, lead CI/CD workflow optimization, and drive best practices in ML engineering. You'll collaborate closely with Data Science, Data Engineering, CCOE, and DevOps teams.
What technologies will I use as a Staff Machine Learning Engineer at Paylocity?
You'll leverage cutting-edge big data technologies on AWS, including Databricks and Spark. Experience with Python for building production-grade ML models and infrastructure, and familiarity with Infrastructure as Code (IAC) tools like CDK or Pulumi are essential.
Is this a remote position, and what are the location requirements for the Staff Machine Learning Engineer role?
Yes, this is a fully remote position, allowing you to work from home from any location within the U.S. There are no in-office requirements, but you must be available during designated work hours, five days a week.
What is the required education and experience for the Staff Machine Learning Engineer position?
A Bachelor's degree with 8 years of experience or an advanced degree (Master's or PhD) with 3 years of experience in machine learning engineering, data engineering, computer science, or a related quantitative field is required. Strong Python, big data, and cloud infrastructure experience are crucial.
How does Paylocity approach AI Ethics in their ML engineering practices?
Paylocity emphasizes baking AI Ethics into all of their processes as a first-class citizen. This commitment is a key aspect of their ML engineering efforts, ensuring responsible and ethical development of AI features.
What kind of career development opportunities are available at Paylocity for a Staff Machine Learning Engineer?
Paylocity is invested in career development and provides opportunities to work with cutting-edge technology, apply the newest tools and practices, and drive best practices across teams, including contributing to formal training programs for MLE tool adoption.

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