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Data Mining Research - dataminingblog.com: practitioner

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Showing posts with label practitioner. Show all posts
Showing posts with label practitioner. Show all posts

Thursday, November 01, 2007

Data mining interview

Will Dwinnell is a data mining practitioner with a long experience as well as a blogger on Data Mining in MATLAB and Abbott Analytics. He kindly accepted to answer the questions of Data Mining Research (DMR) about his every day work.

DMR: Who are you and what is your job?

Will Dwinnell (WD): I am Will Dwinnell and I build predictive mathematical models. At the moment, I work for a credit card company, predicting customer behavior. Prior to holding this position, I built models of telecommunications customer churn, medical patients (cancer diagnosis), microeconomic forecasting, industrial part quality prediction and mutual fund customer defection, among other things.

DMR: What are your everyday data mining challenges?

WD: Probably the same as anyone else's: on the technical side: data which is difficult to access or which is of poor quality (missing values, weak predictors, poorly documented, etc.) and on the business side: dealing with non-data miners.

DMR: Can you give an example of a recurrent issue you face when you are in the "data preparation" step?

WD: Data quality is nearly always an issue. Getting appropriate samples, especially when a non-statistician pulls the data is a challenge. Many difficulties are the same as those faced by any consumer of organizational data: poor or nonexistent documentation, inconsistent variable meanings, frequent missing values, missing value flags which vary from field to field and the inability to link vital tables are typical. I have worked hard to automate solutions to some of these problems.

DMR: As an experienced data miner, do you have a general advice to give to other practitioners in this field?

WD: My primary technical advice would be: Never stop learning. I learn from books and papers (including student project reports- even, on occasion, from high school students), conversations with other analysts and through experimentation.

Thanks to Will Dwinnell for his answers.

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Monday, May 21, 2007

"Who are you" poll results

Thanks for participating to the poll "Who are you" recently proposed on this blog. It is helpful for me to better know the audience of Data Mining Research. Here are the results over 43 votes:

Data mining practitioners: 33%

Data mining researchers: 44%

People from other fields: 23%

It is a quite good mix of researchers and practitioners. I'm surprised (in good) of the high percentage of people from other fields than data mining. I guess these people come from a closely related field such as computer science in general or mathematics. Anyway, I will do my best so that any reader can regularly find interesting posts.

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Monday, May 07, 2007

Who are you?

Tools like Google Analytics are very useful to answer questions such as How many readers do you have each day? and Where do your readers come from? A less straightforward question, that is of interest for this post, is Who are you? Are you a practitioner, a researcher or someone coming from another field than data mining. You can answer simply by using the following poll:



Create polls and vote for free. dPolls.com

It is very interesting for me to know who is reading this blog so I can adapt its content. Thanks in advance for your participation.

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