Data Engineer (Contract)

Palo Alto Networks

United States

Hybrid

USD 123,984 - 130,872

Full time

14 days+

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Benefits offered by this job

Medical benefits
Dental benefits
Vision benefits
401K

Job summary

Palo Alto Networks is looking for a Staff Data Engineer and Scientist to join their Customer Analytics team. This hybrid role entails designing robust data infrastructure and developing ML models to enhance business operations. Responsibilities include data architecture design, model deployment, and collaboration with business stakeholders.

The ideal candidate will have expertise in data pipelines, cloud services, and strong programming skills. Compensation ranges from $90 to $95 per hour along with benefits such as Medical and 401K.

Qualifications

  • Experience building and maintaining data pipelines for reporting and analysis.
  • Prior experience in dynamic cloud environments, specifically GCS and Vertex AI.
  • Expert-level programming skills in Python and a solid command of SQL.

Responsibilities

  • Design and implement scalable data architectures that support organizational data needs.
  • Develop and deploy classical ML models for business applications.
  • Act as an internal consultant to various business teams.

Skills

Data pipeline building
Analytical dataset optimization
Big Data solutions
Data visualization in Tableau
Python programming
SQL querying
Autonomy and project management

Education

MS or PhD in a quantitative field

Tools

Google Cloud Services (GCS)
Vertex AI
Tableau
Looker

Job description

As a Staff Data Engineer and Scientist (Contract), you will be an integral member of our Customer Analytics team, responsible for shaping the future of our business operations through robust data infrastructure and advanced analytical solutions. This unique hybrid role combines data engineering and applied AI/ML, requiring an entrepreneurial problem−solver who thrives in tackling ambiguous business problems through their deep understanding of the business as well as deep technical expertise. You will act as both a strategic partner as well as builder, developing deep insights, building, developing and curating new datasets, as well as owning the end−to−end ML/AI model deployment for key customer success initiatives.

You will be constantly challenged by tough engineering and design tasks, working in a fast‑paced setting to deliver high‑quality, impactful work.

  • Location - USA Remote
  • Duration - 9 months
  • Visa sponsorship assistance is not available for this position
Your Impact

In this versatile role, you will drive impact across both data engineering and data science domains:

Data Engineering Foundations
  • Design & Development: Design and implement scalable data architectures and datasets that support the organization's evolving data needs, providing the technical foundations for our analytics team and business users.
  • Data Engineering: Support and implement large datasets in batch/real‑time analytical solutions leveraging data transformation technologies.
  • Data Security & Scalability: Enable robust data‑level security features and build scalable solutions to support dynamic cloud environments, including financial considerations.
  • Process Improvement: Perform code reviews with peers and make recommendations on how to improve our end‑to‑end development processes.
AI/ML Innovation & Business Impact
  • Develop & Deploy Classical ML Models: Own the end‑to‑end lifecycle of machine learning projects. You'll build and productionize sophisticated models for critical business areas such as marketing attribution, customer churn prediction, case escalation and other relevant use‑cases to post‑sales.
  • Optimize AI Agentic Systems: Play a key role in our generative AI initiatives. You will be responsible for characterizing, evaluating, and fine‑tuning AI agents—such as conversational systems that allow users to query massive datasets using natural language—to improve their accuracy, efficiency, and reliability.
  • Partner with Business Stakeholders: Act as an internal consultant to our Go‑to‑Market (GTM), Global Customer Services (GCS) and Product and Finance teams. You'll translate business challenges into data science use‑cases, identify opportunities for AI‑driven solutions, and present your findings in a clear, actionable manner.
  • Own the Full Data Science Lifecycle: Your responsibilities will cover the entire project workflow, working with the business to understand the problem, charting a path to solve the problem, feature engineering, model selection and training, robust evaluation, deployment, and, in partnership with the data platform team, ongoing monitoring for performance degradation.
Required Experience
  • Experience building and maintaining data pipeline both for reporting, analysis and feature engineering.
  • Experience building and optimizing clean, well‑structured analytical datasets for business and data science use cases. This includes implementing and supporting Big Data solutions for both batch (scheduled) and real‑time (streaming) analytics.
  • Prior experience working extensively within dynamic cloud environments, specifically Google Cloud Services (GCS) BigQuery and Vertex AI.
  • Prior experience developing dashboards in Tableau/Looker or similar data viz platform.
  • Nice to have: Experience implementing and managing data‑level security features to ensure data is protected and access is properly controlled.
  • Expert‑level programming skills in Python.
  • A solid command of SQL for complex querying and data manipulation.
  • Proven ability to work autonomously, navigate ambiguity, and drive projects from concept to completion.
Preferred Qualifications
  • Prior working experience in Customer Analytics space and customer experience use‑cases, e.g. Escalation, Risk predictors, Renewals and efficiency of project delivery in Professional Services space.
  • Direct experience with generative AI, including hands‑on work with LLMs and frameworks like LangChain, LlamaIndex, or the Hugging Face ecosystem.
  • Experience in evaluating and optimizing the performance of AI systems or agents.
  • Demonstrated expertise in specialized modeling domains such as causal inference, time‑series analysis.
  • An MS or PhD in a quantitative field like Computer Science, AI, Statistics, or equivalent practical experience or equivalent military experience.
Compensation

The compensation offered for this position will depend on qualifications, experience, and work location. For candidates who receive an offer, this is the pay range that Magnit (the staffing agency) reasonably expects to pay for this position: $90/hour to $95/hour. Please note that the compensation information in this posting reflects the hourly wage only and does not include benefits. Magnit offers Medical, Dental, Vision and 401K.

Magnit is not able to provide assistance to candidates requiring sponsorship or a visa for this position.

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