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Senior/Machine Learning Engineer, Data Infrastructure
Job in
Mountain View, Santa Clara County, California, 94039, USA
Listed on 2026-09-18
Listing for:
Unity Enterprise
Full Time
position Listed on 2026-09-18
Job specializations:
-
Software Development
Data Engineering, Machine Learning/ ML Engineer
Job Description & How to Apply Below
Mountain View, CA, USA:
Bellevue, WA, USAtime type:
Full time posted on:
Posted Yesterday job requisition :
JOBREQ-2616462#
**** Senior Machine Learning Engineer, Data Infrastructure
**** Unity Vector builds an Data platform that powers insight, experimentation, attribution, and AI-driven decision-making across the company.
Our systems operate at scale across batch and streaming data, supporting analytics, product intelligence, machine learning pipelines, and business operations. As data volume and complexity grow, our platform also supports large-scale model training, feature generation, and experimentation workflows that power production ML systems.
To support this growth, we need strong technical ownership to ensure our ML pipelines remain reliable, scalable, and architecturally sound.##
The Role We are seeking a senior data infra engineer to design and evolve the large-scale offline platform. This role focuses on building reliable infrastructure for generating data infrastructure, training datasets, and orchestrating data workflows. You will work closely with ML engineers and platform teams to ensure our pipelines can efficiently handle growing data volumes and increasingly complex training workloads.
You will play a key role in shaping how model datasets are prepared to ensure the reliability, scalability, and performance of our data platform.##
**** What You’ll Do
***** Develop infrastructure that supports both batch and stream big data processing using technologies such as Flink, Spark, Ray, etc.
* Design and operate large-scale data pipelines that generate training datasets used for machine learning training and experimentation
* Integrate data pipelines with workflow orchestration systems (e.g., Flyte, Airflow, or similar) to enable reliable multi-stage training workflows
* Improve reproducibility and observability of data pipelines through dataset validation, monitoring, and automated testing
* Optimize performance and resource utilization across distributed compute systems used for data processing
* Partner closely with ML engineers to enable efficient large-scale experimentation and model iteration
* Lead architectural improvements to ensure our offline data pipelines remain scalable, reliable, and cost-efficient##
**** What We’re Looking For
***** Experience working with distributed computing frameworks such as Flink, Spark, Ray for distributed data processing
* Experience building infrastructure for training data generation, dataset preparation, or ML feature pipelines
* Experience optimizing big data pipelines and infrastructure for cost efficiency
* Strong programming skills in Python and experience working with large-scale distributed workloads
* Experience with modern data infrastructure (data lakes, warehouses, orchestration systems, streaming platforms)
* Strong systems thinking, with the ability to reason about performance, scalability, reliability, and cost tradeoffs in distributed systems
* Proven ability to lead technical direction and influence architectural decisions across teams without formal authority
**** Additional information:
***** Relocation support is not available for this position.
* Work visa/immigration sponsorship is not available for this position* $200,400-$260,500
* This range reflects the anticipated base salary for this position. Beyond base salary, this role may be eligible for equity awards and participation in our company incentive plans (such as annual discretionary bonuses or sales commissions). The final offer amount will depend on several factors, including geographic location and the candidate’s relevant experience, professional background, and skill set.
* ** Benefits
* * At…
Position Requirements
10+ Years
work experience
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