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Data Architect - R01570398

Other
Posted 2 weeks ago
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Where you can work

Hybrid

Bengaluru, Karnataka, India

View location wording from the posting
Bangalore, Karnataka, India

Role overview

Extracted from the posting. Read the employer’s full description below.

What they are looking for

  • Design and architect robust data pipelines and frameworks to support advanced analytics, machine learning, and AI workloads
  • Develop and implement statistical and AI models, including regression (linear and logistic), classification algorithms, forecasting techniques (ARIMA, exponential smoothing), and deep learning architectures
  • Lead the integration of probabilistic graph models, advanced statistical tests (hypothesis testing, T-Test, Z-Test), and AI-driven solutions into production systems
  • Collaborate with data scientists and engineering teams to optimize data workflows and AI model deployment using tools such as KubeFlow and BentoML
  • Ensure data quality and integrity by implementing validation frameworks like Great Expectations and Evidently AI
Show all 27 items
  • Manage and optimize large-scale data processing and AI environments using Python, PySpark, R, and SAS/SPSS
  • Evaluate and select appropriate machine learning and AI frameworks (TensorFlow, PyTorch, Sci-Kit Learn, CNTK, Keras, MXNet) for scalable model deployment
  • Provide technical leadership in the adoption of emerging technologies and best practices in data architecture, advanced analytics, and AI solutions
  • Advanced proficiency in Python and PySpark
  • Expertise in statistical analysis and computing
  • Hands-on experience with SAS and SPSS
  • Strong knowledge of hypothesis testing, T-Test, and Z-Test
  • Experience with regression techniques (linear and logistic)
  • Proficiency in probabilistic graph models
  • Familiarity with Great Expectations and Evidently AI for data validation
  • Forecasting expertise using ARIMA, ARIMAX, and exponential smoothing
  • Working knowledge of KubeFlow and BentoML
  • Experience with classification algorithms (Decision Trees, SVM)
  • Experience architecting AI solutions and deploying deep learning models
  • Advanced experience with ML and AI frameworks such as TensorFlow, PyTorch, Sci-Kit Learn, CNTK, Keras, and MXNet
  • Expertise in distance metrics (Hamming, Euclidean, Manhattan)
  • Proficiency in R and R Studio
  • Experience with scalable AI model deployment in cloud environments
  • Knowledge of automated model monitoring, drift detection, and AI lifecycle management
  • Bachelor's degree in Computer Science, Data Science, Statistics, Mathematics, or a closely related discipline
  • Certification in Data Architecture, Data Science, or AI (e.g., Certified Data Professional, Microsoft Certified: Azure Data Scientist Associate, AI Architect certification)
  • Certification in Machine Learning frameworks or platforms (e.g., TensorFlow Developer Certificate, AWS Certified Machine Learning – Specialty)

Employer description

Data Architect

Job requirements

Experience Range: With at least 7 to 10 years of experience in data architecture, data science, advanced statistical modeling, and AI architecture Key Responsibilities:

  • Design and architect robust data pipelines and frameworks to support advanced analytics, machine learning, and AI workloads
  • Develop and implement statistical and AI models, including regression (linear and logistic), classification algorithms, forecasting techniques (ARIMA, exponential smoothing), and deep learning architectures
  • Lead the integration of probabilistic graph models, advanced statistical tests (hypothesis testing, T-Test, Z-Test), and AI-driven solutions into production systems
  • Collaborate with data scientists and engineering teams to optimize data workflows and AI model deployment using tools such as KubeFlow and BentoML
  • Ensure data quality and integrity by implementing validation frameworks like Great Expectations and Evidently AI
  • Manage and optimize large-scale data processing and AI environments using Python, PySpark, R, and SAS/SPSS
  • Evaluate and select appropriate machine learning and AI frameworks (TensorFlow, PyTorch, Sci-Kit Learn, CNTK, Keras, MXNet) for scalable model deployment
  • Provide technical leadership in the adoption of emerging technologies and best practices in data architecture, advanced analytics, and AI solutions

Required Skills:

  • Advanced proficiency in Python and PySpark
  • Expertise in statistical analysis and computing
  • Hands-on experience with SAS and SPSS
  • Strong knowledge of hypothesis testing, T-Test, and Z-Test
  • Experience with regression techniques (linear and logistic)
  • Proficiency in probabilistic graph models
  • Familiarity with Great Expectations and Evidently AI for data validation
  • Forecasting expertise using ARIMA, ARIMAX, and exponential smoothing
  • Working knowledge of KubeFlow and BentoML
  • Experience with classification algorithms (Decision Trees, SVM)
  • Experience architecting AI solutions and deploying deep learning models

Preferred Skills:

  • Advanced experience with ML and AI frameworks such as TensorFlow, PyTorch, Sci-Kit Learn, CNTK, Keras, and MXNet
  • Expertise in distance metrics (Hamming, Euclidean, Manhattan)
  • Proficiency in R and R Studio
  • Experience with scalable AI model deployment in cloud environments
  • Knowledge of automated model monitoring, drift detection, and AI lifecycle management

Desired Qualifications:

  • Bachelor's degree in Computer Science, Data Science, Statistics, Mathematics, or a closely related discipline
  • Certification in Data Architecture, Data Science, or AI (e.g., Certified Data Professional, Microsoft Certified: Azure Data Scientist Associate, AI Architect certification)
  • Certification in Machine Learning frameworks or platforms (e.g., TensorFlow Developer Certificate, AWS Certified Machine Learning – Specialty)
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