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Data Scientist - Remote_Cogniticx

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Full Remote
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Offer summary

Qualifications:

5+ years of experience in AI, machine learning, and deep learning, Background in Maths and Statistics.

Key responsabilities:

  • Develop complex classification/extraction models
  • Support Intellect customers selection process
  • Understand ML workflow and pipeline architectures
  • Build, train and deploy ML models with AWS services
  • Provide thought leadership and collaboration
CodersBrain logo
CodersBrain Management Consulting SME https://www.codersbrain.com/
201 - 500 Employees
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Job description

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Your missions

Job Position: Data Scientist
Total Experience: 5+ Years
Payroll Company: Codersbrain Technology Pvt. Ltd.
Location- Remote
Notice Period: Immediate to 15 Days.

Role : Data Scientist
Technical Skills Priority 1: AI Architecture & Pipeline planning, Python, Pytorch, Tensorflow, Neural N/W, Transformers & Graph
Technical Skills Priority 2: AWS AI service, AWS ML service
Technical Skills Priority 3: Exposure to ML Ops offerings
No of Years of Experience: 5-7 years
Preferred Industry Experience: Wealth and Insurance
Educational Qualifications: Background in Maths & Statistics
Location: Remote
Contract Duration: 6 months
Mobilization Period: 2 to 3 weeks
 
Job Description
You must have deep technical experience working with technologies related to artificial intelligence, machine learning and deep learning. A strong mathematics and statistics background is preferred, in addition to experience building complex classification/extraction models extracting data from documents i.e. form, unstructured documents and IDs. You will be familiar with the ecosystem of consulting partners and software vendors in the AI/ML space, and will leverage this knowledge to help Intellect customers in their selection process.
 
Technical skills:
 
AI architecture and pipeline planning. Understand the workflow and pipeline architectures of ML and deep learning workloads. An in-depth knowledge of components and architectural trade-offs involved across the data management, governance, model building, deployment and production workflows of AI is a must.
 
Data science and advanced analytics, including knowledge of advanced analytics tools (such as Python) along with applied mathematics, ML and Deep Learning frameworks (such as PyTorch, Tensorflow) and ML techniques (such as neural networks, transformers and graphs).
AWS AI services, Hands on experience to Build, train, and deploy machine learning (ML) models for any use case with fully managed infrastructure, tools, and workflows  
AWS ML services, Hands on experience to Build, train, deploy, monitor and govern machine learning (ML) models for any use case with fully managed infrastructure, tools, and workflows
MLOps principles. Exposure to AWS MLOps offerings
 
Non-technical skills include:
 
Wealth / Insurance Domain Knowledge is advantageous.
 
Thought leadership. Be change agents to help the organization adopt an AI-driven mindset. Take a pragmatic approach to the limitations and risks of AI, and project a realistic picture in front of executives/product owners who provide overall digital thought leadership.
 
Collaborative mindset. To ensure that AI platforms deliver both business and technical requirements, seek to collaborate effectively with data scientists, data engineers, data analysts, ML engineers, other architects, business unit leaders and CxOs (technical and nontechnical personnel), and harmonize the relationships among them.

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Experience

Industry :
Management Consulting
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Soft Skills

  • Collaboration

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