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Procore Technologies

Staff ML Data Engineer (Datagrid)

Posted Yesterday
In-Office or Remote
Hiring Remotely in CA
Senior level
In-Office or Remote
Hiring Remotely in CA
Senior level
The Staff ML Data Engineer leads data engineering for AI systems, building scalable data pipelines, ensuring quality, and mentoring engineers to enhance data architecture for robust machine learning projects.
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Job Description

We’re looking for a Staff ML Data Engineer to join Procore’s AI & Frontier Models organization. In this role, you’ll be responsible for designing and building the data systems that power frontier‑scale machine learning research and applied AI products, with a particular focus on spatial intelligence and multimodal data. The primary goal of this role is to ensure that researchers and engineers can reliably discover, curate, transform, and operate on large‑scale datasets that move from experimentation to production.

As a Staff ML Data Engineer, you’ll work closely with ML researchers, applied ML engineers, and system architects to turn ambiguous research needs into scalable, production‑ready data pipelines. You’ll remain deeply hands‑on while providing technical leadership in data architecture, quality, and operational excellence. This is an opportunity to shape how Procore builds, evaluates, and deploys frontier models by ensuring the underlying data systems are robust, observable, and designed for iteration.

This position reports into an Engineering Manager within Procore AI and will be based in our San Francisco office. We’re looking for someone to join us immediately.

What you’ll do
  • Act as the technical lead for data engineering efforts supporting frontier model research and applied ML systems.

  • Design, build, and maintain scalable batch and streaming pipelines for multimodal data (e.g., documents, images, spatial metadata).

  • Partner closely with researchers and architects to translate experimental workflows into reliable, repeatable data systems.

  • Lead the development of dataset curation, versioning, and lineage workflows that support rapid experimentation and reproducibility.

  • Establish and uphold standards for data quality, validation, observability, and cost efficiency across AI data pipelines.

  • Contribute to data architecture decisions spanning research environments and production systems.

  • Identify gaps or inefficiencies in existing data workflows and run proofs‑of‑concept to evaluate improvements.

  • Mentor other engineers through code reviews, design discussions, and hands‑on collaboration.

What we’re looking for
  • Bachelor’s or Master’s degree in Computer Science, Engineering, or a related field, or equivalent practical experience.

  • 8+ years of experience designing and operating complex data systems in production or research‑adjacent environments.

  • Strong proficiency in SQL and Python; experience with data‑intensive or distributed systems.

  • Proven experience building scalable data pipelines that support machine learning training, evaluation, or inference workflows.

  • Solid understanding of data modeling, dataset lifecycle management, and data quality best practices.

  • Comfort operating in highly ambiguous problem spaces and collaborating closely with researchers and architects.

  • Demonstrated ability to lead through direct technical contribution, mentorship, and setting engineering standards.

  • Strong communication skills, with the ability to explain technical tradeoffs to both research and engineering audiences.

Nice to have experience with technologies such as:

  • ML & Research Data: Large‑scale dataset curation, annotation workflows, experiment tracking, reproducibility tooling

  • Data Platforms: Databricks, Spark, lakehouse architectures, cloud data warehouses

  • Streaming & Pipelines: Kafka, Pub/Sub, event‑driven data architectures

  • Orchestration & Observability: Airflow, Dagster, data quality and lineage tools

  • Cloud & Infrastructure: AWS or GCP, containerized data workloads, CI/CD, infrastructure‑as‑code

  • Performance & Cost: Optimizing data pipelines for GPU‑backed training and large‑scale inference workloads

Additional Information

Base Pay Range:

227,332.00 - 312,581.50 USD Annual

This role may also be eligible for Equity Compensation and/or Bonus Incentive Compensation. Procore is committed to offering competitive, fair, and commensurate compensation. Actual compensation will be based on a candidate’s job-related skills, experience, education or training, and location.

For Los Angeles County (unincorporated) Candidates:

Procore will consider for employment all qualified applicants, including those with arrest or conviction records, in accordance with the requirements of applicable federal, state, and local laws, including the City of Los Angeles’ Fair Chance Initiative for Hiring Ordinance, the Los Angeles County Fair Chance Ordinance for Employers, and the California Fair Chance Act.

A criminal history may have a direct, adverse, and negative relationship on the following job duties, potentially resulting in the withdrawal of the conditional offer of employment: 1. appropriately managing, accessing, and handling confidential information including proprietary and trade secret information, as well as accessing Procore's information technology systems and platforms; 2. interacting with and occasionally having unsupervised contact with internal/external customers, stakeholders, and/or colleagues; and 3. exercising sound judgment.

Top Skills

Airflow
AWS
Dagster
Databricks
GCP
Kafka
Pub/Sub
Python
Spark
SQL

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