Fortive is Looking for Data Scientist

Full time Hybrid @Fortive in DATA SCIENTIST Email Job

Job Detail

  • Job ID 6844
  • Job Categories  DATA SCIENTIST

Job Description

About the job

Job Title: Data Scientist

Location: Hybrid

Job Type: Full-time

About Us:

Fortive is at the forefront of leveraging data and AI technologies to drive innovation across industries. We aim to solve real-world challenges by combining advanced machine learning, cloud computing, and generative AI to deliver cutting-edge solutions. We’re looking for a talented and passionate Data Scientist to join our dynamic team and help us continue to push the boundaries of AI.

Key Responsibilities:

Data Analysis & Modeling:

 

  • Develop and deploy advanced machine learning models to address business problems across multiple domains.
  • Analyze large datasets, perform exploratory data analysis (EDA), and derive actionable insights.
  • Build, test, and refine predictive models and algorithms using a variety of ML techniques (e.g., supervised and unsupervised learning, deep learning,computer vision).

AI & Gen AI Expertise:

 

  • Apply cutting-edge generative AI models (e.g., GPT, VAEs, GANs) to create innovative solutions and products.
  • Work with AI agents to automate and optimize workflows across different areas of the business.
  • Explore and implement novel AI methodologies, including reinforcement learning and transfer learning.

Cloud Infrastructure:

 

  • Design and implement scalable data pipelines and ML models in cloud environments such as AWS or Azure.
  • Collaborate with the cloud infrastructure team to ensure smooth deployment and operation of models in production.
  • Leverage cloud-native AI and ML tools (e.g., AWS SageMaker, Azure ML) to accelerate model development and deployment.

Collaboration & Leadership:

 

  • Work closely with cross-functional teams, including software engineers, data engineers, and product managers, to integrate AI solutions into products.

Stay Up-to-date With Trends:

 

  • Continuously research and evaluate the latest AI advancements, trends in machine learning, and emerging technologies in the AI space.
  • Contribute to internal knowledge-sharing, promoting the latest findings, tools, and techniques to improve team capabilities.

Key Requirements:

Education:

 

  • Bachelors in Computer Science, Data Science, Engineering, Mathematics, or a related field.

Experience:

 

  • 5+ years of relevant hands-on experience as a Data Scientist or Machine Learning Engineer.
  • Proven track record of developing and deploying machine learning models in a production environment.
  • Experience with generative AI models (GPT, GANs, VAEs) and AI agents is a must.
  • Strong knowledge of cloud platforms (AWS, Azure) and their AI/ML services (SageMaker, Azure ML, etc.).
  • Solid understanding of the latest trends in AI, including large language models, reinforcement learning, computer vision & deep learning.

Technical Skills:

 

  • Proficiency in Python, R, or other relevant programming languages.
  • Strong knowledge of machine learning libraries such as TensorFlow, PyTorch, Scikit-learn, or Keras.
  • Experience with SQL and cloud-native data processing tools (e.g., AWS Redshift, Azure Synapse, Spark).
  • Familiarity with DevOps practices and CI/CD pipelines for ML model deployment.

Soft Skills:

 

  • Strong communication skills with the ability to translate complex technical concepts into business-friendly language.
  • Problem-solving mindset, with the ability to approach challenges creatively and collaborate with diverse teams.
  • Leadership potential or experience mentoring junior team members.

Preferred Qualifications:

 

  • Certification or training in AWS (e.g., AWS Certified Machine Learning), Azure, or other cloud services.
  • Experience working with containerization technologies like Docker and Kubernetes for model deployment.
  • Exposure to the latest trends in AI ethics, explainability, and fairness.

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