Machine Learning & Data Engineer, Vehicle Modeling

42dot

$125K — $150K *
Manufacturing & Automotive
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's or higher degree in Computer Science, Engineering, or related field.
  • Proven experience in machine learning and data engineering.
  • Familiarity with vehicle telemetry and simulation data.
  • Expertise in cloud-based data infrastructure and processes.
  • Strong understanding of hybrid physics-data modeling techniques.

Responsibilities

  • Develop machine learning and hybrid physics-data approaches to enhance vehicle models.
  • Create calibration and estimation methods for adaptive modeling across vehicle states.
  • Establish scalable workflows to compare model predictions with real-world data.
  • Build data pipelines for managing large-scale vehicle telemetry and time-series data.
  • Develop cloud infrastructure for data processing and model evaluation.
  • Create tools for dataset management and reproducible model development.
  • Assist in data processing and analysis for vehicle intelligence workflows.

Benefits

  • Flexible work hours and remote work options.
  • Access to advanced tools and technologies for professional growth.
  • Opportunity to impact next-gen vehicle modeling and autonomous driving.
  • Collaboration with a talented team of experts in various fields.
  • Encouragement for continuous learning and development.
Full Job Description
About the Role

We are building next-generation vehicle modeling and data technology at 42dot by combining physics-based models, machine learning, simulation, and large-scale vehicle data.

As a Machine Learning & Data Engineer, Vehicle Modeling, you will develop ML and data infrastructure that improves vehicle models and supports broader vehicle intelligence and autonomous driving development. You will work across vehicle telemetry, simulation, test data, fleet data, and cloud platforms to build scalable systems for model development, evaluation, and continuous improvement.

A core focus of this role is using real-world vehicle data to identify model performance gaps and improve models through calibration, parameter estimation, machine learning, and hybrid physics-and-data approaches. You may develop ML models that complement physics-based models, estimate model parameters under different vehicle states and operating conditions, or improve predictions where physical models alone are insufficient.

You will also help build the data and cloud infrastructure needed to ingest, clean, organize, process, and evaluate large-scale vehicle datasets, supporting modeling, simulation, vehicle intelligence, and autonomous driving workflows.
This role sits at the intersection of machine learning, data engineering, physical system modeling, simulation, and vehicle software.

Responsibilities
  • Develop machine learning and hybrid physics-data approaches to improve vehicle and component model accuracy.
  • Develop methods for model calibration, parameter estimation, adaptive modeling, and data-driven model improvement across different vehicle states and operating conditions.
  • Build scalable workflows for comparing model predictions with test, simulation, and real-world vehicle data and identifying opportunities for model improvement.
  • Build pipelines for ingesting, cleaning, synchronizing, transforming, storing, and accessing large-scale vehicle telemetry and time-series data.
  • Develop cloud-based infrastructure for data processing, model training, simulation, evaluation, and validation.
  • Build tools and workflows for dataset management, model evaluation, experiment tracking, and reproducible model development.
  • Support data processing, model evaluation, and analysis workflows used by vehicle intelligence

Interview Process
  • Application Review - Coding Test - 1st interview - 2nd interview - Offer Negotiation - Hiring
  • The screening procedures may vary depending on the position, schedule, or other circumstances.
    You will be individually notified of the screening schedule and results via the email address provided in your application.

Additional Information
  • In accordance with fair hiring practices, do not include any personal information unrelated to your job qualifications (e.g., Social Security Number, family relations, marital status, age, photo, physical condition, place of birth, etc.) in your resume.
  • All documents must be submitted in PDF format and under 30MB in size.
  • If you experience issues uploading your resume, please send it along with the job posting URL to [redacted].
  • We strongly encourage applications from U.S. veterans and candidates eligible for employment preference under applicable laws.


※ Please review the following information before applying.
  • How to work in 42dot, About 42dot Way →

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