Machine Learning Engineer

RZR Global Inc.

$120K — $160K *
Technical Services
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Mathematics, Physics, Computer Science, or similar field
  • At least 2 years of experience in machine learning, statistical analysis, and data analysis
  • Familiarity with ML techniques like regression, classification, and clustering
  • Proficient in Python and SQL; experience with big data tools (e.g., Spark) and ML libraries (e.g., TensorFlow, PyTorch, Scikit-Learn)
  • Strong understanding of probability, statistics, and data analysis principles
  • Team player with strong communication skills for explaining complex concepts

Responsibilities

  • Support development of ML models for programmatic advertising challenges
  • Collaborate with senior data scientists and teams to integrate models into production
  • Analyze impacts of new data sources and features on models
  • Build and maintain data pipelines for large dataset processing
  • Contribute ideas and assist with testing new ML tools and methodologies
  • Document experiments and maintain reproducibility of outcomes

Benefits

  • Opportunity to work on challenging ML projects in a dynamic environment
  • Collaborative team setting with cross-functional interactions
  • Exposure to advanced machine learning tools and methodologies
  • Contribution to impactful solutions in the ad-tech industry
  • Professional development opportunities through hands-on experience
Full Job Description
The role?

We are seeking a motivated and detail-oriented Machine Learning Engineer to join our team. As an ML Engineer, you will be involved in designing and implementing machine learning models and data pipelines to enhance our programmatic demand-side platform (DSP). You will work closely with Senior MLE and other team members to drive impactful machine learning projects and contribute to innovative solutions.
What will you do?
  • Support the development of machine learning models to address challenges in programmatic advertising, such as predicting user responses, forecasting bid landscapes, and detecting fraud.
  • Collaborate with senior data scientists and cross-functional teams (product, engineering, and analytics) to integrate models into production workflows.
  • Analyze the impact of integrating new data sources and features into our models.
  • Build and maintain data pipelines to process and prepare large datasets for model training and evaluation.
  • Contribute ideas and assist in testing new tools, methodologies, and technologies to improve our machine learning capabilities.
  • Document experiments, assumptions, and outcomes; maintain reproducibility
What are we looking for?
  • Bachelor's degree in Mathematics, Physics, Computer Science, or a related technical field.
  • At least 2 years of professional experience in machine learning, statistical analysis, and data analysis.
  • Experience with machine learning techniques such as regression, classification, and clustering.
  • Proficiency in Python and SQL and familiarity with big data tools (e.g., Spark) and ML libraries (e.g., TensorFlow, PyTorch, Scikit-Learn).
  • Strong grasp of probability, statistics, and data analysis principles.
  • Ability to work effectively in a team environment, with good communication skills to explain complex concepts to diverse stakeholders.
Nice-to-Have
  • Familiarity with system programming languages including C++ and Rust is a plus.
  • Exposure to online inference systems, gRPC/REST model endpoints, or streaming features (Kafka/Flink)
  • Ad-tech familiarity: auction dynamics, pacing, fraud signals, creative personalization.

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