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Data Analyst

  • ... Posted on: Dec 06, 2024
  • ... Cadre Technologies Services LLC
  • ... Irving Place, New York
  • ... Salary: Not Available
  • ... CTC

Data Analyst   

Job Title :

Data Analyst

Job Type :

CTC

Job Location :

Irving Place New York United States

Remote :

No

Jobcon Logo Job Description :

Data Analyst w/ ML and AI
4 IRVING PLACE IN NYC
No OPT, H1B
PER HIRING MANAGER:
LOCALS ONLY THANKS
1-As This is a a hybrid role. Do you know how many days do you want the person to work on site and how many offsite ?
Currently 3 days a day. In the future, it will be 5 days.
2-Also please , do you have any current people that are incumbent ?
We have contractor in the team who knows Machine Learning, SQL, Power BI, Python, Databricks Data Engineering. We would like someone who these skillsets.
3- Will the interview will be on site or over video only?
It is on-site only
Experience with GenAI and large language models.
Experience- 7 or more years of experience in data science and machine learning engineering.
JOB DESCRIPTION
Designing and maintaining data systems and databases; this includes fixing coding errors and other data-related problems. Mining data from primary and secondary sources, then reorganizing said data in a format that can be easily read by either human or machine. Using statistical tools to interpret data sets, paying particular attention to trends and patterns that could be valuable for diagnostic and predictive analytics efforts.

Required Skills/Experience (Skills that the successful candidate(s) must have)
Bachelor's degree in data science, data analytics, or a related field.
Proficiency in programming languages: SQL, Python and PySpark.
Minimum 3 years of experience with data visualization tools such as Power BI, Dax Queries, and best practices.
Must know how to analyze the root cause of dashboard errors.
Have experience in ML Ops and have strong coding background.
Have experience with Natural Language Processing (NLP).
Expertise in data mining and machine learning.
Knowledge or experience with A/B Testing.
Working knowledge of designing, training, and implementing machine learning models.
Familiarity with cloud-based infrastructure.
Additional Skills (Skills that are a plus, but not required)
Master's degree or Ph.D. in a quantitative field, such as statistics, computer science, mathematics, or engineering.
Azure Databrick Data Engineer Certification is a plus.
Experience with big data analytics technologies such as Spark and Hadoop.
Responsibilities
Collaborate with business stakeholders to understand their requirements and translate them into technical specifications.
Communicate insights and findings to business stakeholders.
Build, deploy, and maintain data management systems and back-end data infrastructure for our machine learning pipeline.
Build dashboards and analyze the root cause of dashboard malfunctions.
Perform data mining, exploration, and analysis.
Create data visualizations, reports, dashboards, and data audits.
Design, train, and implement machine learning algorithms.
Leverage predictive models to optimize customer experiences.

Jobcon Logo Position Details

Posted:

Dec 06, 2024

Employment:

CTC

Salary:

Not Available

Snaprecruit ID:

SD-CIE-965d1555d28af6ac9c1b90166e5c42f0374343570887877aaba03557d14330d7

City:

Irving Place

Job Origin:

CIEPAL_ORGANIC_FEED

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Data Analyst w/ ML and AI
4 IRVING PLACE IN NYC
No OPT, H1B
PER HIRING MANAGER:
LOCALS ONLY THANKS
1-As This is a a hybrid role. Do you know how many days do you want the person to work on site and how many offsite ?
Currently 3 days a day. In the future, it will be 5 days.
2-Also please , do you have any current people that are incumbent ?
We have contractor in the team who knows Machine Learning, SQL, Power BI, Python, Databricks Data Engineering. We would like someone who these skillsets.
3- Will the interview will be on site or over video only?
It is on-site only
Experience with GenAI and large language models.
Experience- 7 or more years of experience in data science and machine learning engineering.
JOB DESCRIPTION
Designing and maintaining data systems and databases; this includes fixing coding errors and other data-related problems. Mining data from primary and secondary sources, then reorganizing said data in a format that can be easily read by either human or machine. Using statistical tools to interpret data sets, paying particular attention to trends and patterns that could be valuable for diagnostic and predictive analytics efforts.

Required Skills/Experience (Skills that the successful candidate(s) must have)
Bachelor's degree in data science, data analytics, or a related field.
Proficiency in programming languages: SQL, Python and PySpark.
Minimum 3 years of experience with data visualization tools such as Power BI, Dax Queries, and best practices.
Must know how to analyze the root cause of dashboard errors.
Have experience in ML Ops and have strong coding background.
Have experience with Natural Language Processing (NLP).
Expertise in data mining and machine learning.
Knowledge or experience with A/B Testing.
Working knowledge of designing, training, and implementing machine learning models.
Familiarity with cloud-based infrastructure.
Additional Skills (Skills that are a plus, but not required)
Master's degree or Ph.D. in a quantitative field, such as statistics, computer science, mathematics, or engineering.
Azure Databrick Data Engineer Certification is a plus.
Experience with big data analytics technologies such as Spark and Hadoop.
Responsibilities
Collaborate with business stakeholders to understand their requirements and translate them into technical specifications.
Communicate insights and findings to business stakeholders.
Build, deploy, and maintain data management systems and back-end data infrastructure for our machine learning pipeline.
Build dashboards and analyze the root cause of dashboard malfunctions.
Perform data mining, exploration, and analysis.
Create data visualizations, reports, dashboards, and data audits.
Design, train, and implement machine learning algorithms.
Leverage predictive models to optimize customer experiences.

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