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Data Scientist

Description

Wiliot was founded by the team that invented one of the technologies at the heart of 5G. Their next vision was to develop an IoT sticker, a computing element that can power itself by harvesting radio frequency energy, bringing connectivity and intelligence to everyday products and packaging—things previously disconnected from the IoT. This revolutionary mixture of cloud and semiconductor technology is being used by some of the world’s largest consumer, retail, food, and pharmaceutical companies to change the way we make, distribute, sell, use, and recycle products. 

Our investors include Softbank, Amazon, Alibaba, Verizon, NTT DoCoMo, Qualcomm, and PepsiCo. 

We are growing fast and need people that want to be part of the journey, commercializing Sensing as a Service and enabling “Intelligence for Everyday Things.” 

Wiliot is seeking an experienced Data Scientist to join our team in one of our key locations: San Francisco, New York, or Dallas. This role will focus on developing, deploying, and optimizing machine learning models that power Wiliot’s core intelligence platform. You will work closely with engineering, product, and customer-facing teams to derive insights from IoT data and deliver high-impact ML solutions at scale. 


Responsibilities
  • ML Model Development: Design, build, and validate machine learning models to support applications such as anomaly detection, states of inventory, and supply chain behavior on streaming and batch IoT data. 
  • Data Preparation & Feature Engineering: Collaborate with data engineers to prepare high-quality datasets, develop scalable feature pipelines, and manage training data lifecycle. 
  • Model Deployment: Implement and operationalize models using MLOps best practices. This includes packaging models, tracking experiments, and monitoring performance in production. 
  • Collaboration & Enablement: Work closely with engineering and product teams to align model development with real-world use cases. Enable business and technical stakeholders to leverage insights through accessible tools and visualizations. 
  • Streaming & Real-time Analytics: Contribute to the development of real-time intelligence features using tools such as Spark Structured Streaming, Kafka, and other big data frameworks. 
  • Tooling & Automation: Build internal tools and workflows to improve experimentation speed and reproducibility. Support automation of model training, evaluation, and retraining processes. 
  • Innovation & Research: Stay up-to-date with developments in the machine learning, AI, and IoT space. Evaluate and apply new techniques to enhance model accuracy and performance. 



Requirements

Education: 

  • Bachelor’s or master’s degree in Computer Science, Statistics, Machine Learning, or a related field. 

Experience: 

  • 3–5 years of experience in data science roles, preferably in a technology or IoT-focused company. 
  • Proven experience developing and deploying machine learning models in production environments. 
  • Hands-on experience with Apache Spark (PySpark or Scala) for large-scale data processing. 
  • Experience working with time series or sensor data, particularly in a streaming or real-time context. 

Technical Skills: 

  • Proficient in Python and common ML libraries (e.g., scikit-learn, XGBoost, TensorFlow, PyTorch). 
  • Strong SQL skills and familiarity with data storage formats such as Parquet and Delta. 
  • Experience with cloud platforms such as AWS, GCP, or Azure. 
  • Exposure to ML lifecycle tools like MLflow, SageMaker, or Vertex AI. 
  • Familiarity with version control systems such as Git and containerized development (e.g., Docker). 

Additional Skills (Bonus): 

  • Experience with Java and/or Scala. 
  • Familiarity with streaming data tools such as Kafka, Spark Structured Streaming, or Flink. 
  • DevOps/MLOps experience, including CI/CD, model monitoring, and reproducibility best practices. 
  • Exposure to Databricks or Airflow for workflow orchestration. 
  • Understanding of modern software design patterns (e.g., microservices, functional programming). 
  • Strong communication skills to bridge technical and non-technical domains. 
  • Ability to manage multiple projects and prioritize in a fast-paced environment. 


#LI-Hybrid


Average salary estimate

$110000 / YEARLY (est.)
min
max
$90000K
$130000K

If an employer mentions a salary or salary range on their job, we display it as an "Employer Estimate". If a job has no salary data, Rise displays an estimate if available.

What You Should Know About Data Scientist, Wiliot

Are you ready to be a part of an innovative company that’s changing the landscape of IoT? Wiliot, a pioneer founded by the creative minds behind 5G technology, is seeking a talented Data Scientist to join our fast-growing team in locations like San Francisco, New York, or Dallas. Our MLOps team works on transforming everyday objects into smart, connected items, revolutionizing industries from consumer goods to pharmaceuticals. As a Data Scientist at Wiliot, your main focus will be on developing, deploying, and optimizing machine learning models that drive our core intelligence platform. You'll collaborate closely with engineering and product teams to analyze streaming and batch IoT data, crafting solutions that tackle real-world challenges such as anomaly detection and inventory states. Your responsibilities will include designing and validating machine learning models, preparing high-quality datasets, and implementing best practices in model deployment. We value creativity, innovation, and collaboration, offering a platform where you can leverage your skills in Python, SQL, and big data frameworks like Apache Spark. If you're passionate about the intersection of machine learning and IoT, and excited by the prospect of enabling “Intelligence for Everyday Things,” we’d love to meet you. Join us in this exciting journey and help redefine how the world connects to the things that matter most!

Frequently Asked Questions (FAQs) for Data Scientist Role at Wiliot
What responsibilities does a Data Scientist at Wiliot have?

As a Data Scientist at Wiliot, your key responsibilities include designing, building, and validating machine learning models that address various applications like anomaly detection and supply chain insights. You'll collaborate with engineering teams to prepare datasets, operationalize models using MLOps best practices, and contribute to real-time data analytics projects. Your role will also involve developing internal tools to enhance model training and experimentation. Moreover, staying updated on the latest trends in machine learning and IoT will be essential to your work.

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What qualifications are required for the Data Scientist position at Wiliot?

To be a successful Data Scientist at Wiliot, you need a bachelor’s or master’s degree in Computer Science, Statistics, or a related field, along with 3-5 years of experience in data science, ideally in tech or IoT sectors. Familiarity with machine learning libraries like TensorFlow and PyTorch, and hands-on experience with data frameworks like Apache Spark, are crucial. Proficiency in Python and SQL, along with a solid understanding of cloud platforms such as AWS or Google Cloud, will also be important for optimizing our intelligence platform.

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What tools and technologies do Data Scientists at Wiliot use?

Data Scientists at Wiliot utilize a variety of tools and technologies to optimize our machine learning models. You will work with Python and popular ML libraries such as scikit-learn and XGBoost. Experience with big data technologies like Apache Spark, Kafka, and distributed computing frameworks is essential. Additionally, familiarity with MLOps and lifecycle management tools like MLflow or SageMaker, as well as version control systems like Git, are advantageous in streamlining your development and deployment processes.

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What is the work culture like for a Data Scientist at Wiliot?

Wiliot fosters an innovative, collaborative, and fast-paced work culture that encourages creativity and teamwork. As a Data Scientist, you will work in a hybrid environment, contributing ideas alongside engineers and product teams to bring impactful ML solutions to life. The company values continuous learning and adaptability, supporting employees to stay updated with industry developments while providing opportunities to tackle real-world IoT challenges.

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What are the career growth opportunities for a Data Scientist at Wiliot?

At Wiliot, career growth opportunities for Data Scientists are abundant due to our commitment to fostering talent and innovation. You will have avenues to lead projects, collaborate with cross-functional teams on critical initiatives, and explore new technologies in the machine learning and IoT space. Your role can evolve into more advanced positions in data science, management, or strategy as you gain experience and showcase your skills in driving impactful results.

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Common Interview Questions for Data Scientist
Can you describe your experience with machine learning models?

When answering this question, focus on specific projects where you played a key role in developing machine learning models. Explain your approach to model selection, feature engineering, and validation. Mention tools you’ve used, such as Python libraries and big data frameworks, and be prepared to discuss the impact of your models on business outcomes.

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How do you ensure the quality of datasets for your models?

Discuss your methods for data preparation, including techniques for cleaning, transforming, and validating data. Explain how you collaborate with data engineers to create high-quality datasets and how you handle challenges such as missing or inconsistent data. Mention any tools you use in the process to maintain data integrity.

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Describe your experience with real-time analytics.

Relate any practical experience you've had with real-time analytics in your previous roles. Talk about the frameworks you've used, like Spark Structured Streaming or Kafka, and how you've implemented real-time features. Emphasize any successes you've achieved through this work to demonstrate its importance.

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How do you approach model deployment and monitoring?

Outline your experience with MLOps best practices, focusing on how you deploy models in production environments. Discuss the tools you use for packaging, tracking, and monitoring model performance. Highlight any specific instances where monitoring led to necessary adjustments and improvements in model efficiency.

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What strategies do you employ for feature engineering?

Share your understanding of feature engineering and the strategies you use to create effective features for machine learning models. Discuss any specific techniques you favor, such as extracting from time series data or dealing with sensor inputs. Providing examples will strengthen your answer.

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How have you collaborated with cross-functional teams in past projects?

Emphasize your communication skills and teamwork experience by sharing examples of how you've worked with engineering or product teams. Highlight instances where collaboration has led to successful project outcomes, showing how your data insights have influenced decisions and product features.

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Can you provide an example of a challenging project you worked on?

Select a challenging project where you overcame significant obstacles through innovative thinking. Discuss the technical challenges faced, your problem-solving approach, and the measurable impact of the project. This showcases your resilience and ability to handle pressure.

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What tools have you used for data visualization?

Mention the data visualization tools you're familiar with, such as Tableau, Matplotlib, or Seaborn. Describe how you’ve used these tools to create impactful visualizations that convey complex insights to both technical and non-technical stakeholders, thereby facilitating decision-making with your models.

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How do you stay updated with advancements in machine learning and IoT?

Share your commitment to continuous learning by mentioning resources you follow, such as industry publications, webinars, and online courses. Discuss how you've applied recent learnings to your work, displaying your proactive nature in staying ahead in the ever-evolving fields of ML and IoT.

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What role do you see data scientists playing in the IoT industry?

Explain your view on the strategic significance of data scientists in IoT, focusing on their ability to extract actionable insights from data. Discuss how their work enhances product intelligence and user experience, driving innovation and efficiency in the industry.

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At Wiliot, we bring connectivity and intelligence to everyday products and packaging; things previously disconnect from the Internet of Things. The Wiliot Platform combines cloud services and IoT Pixels, computing elements that can power themselve...

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DATE POSTED
March 31, 2025

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